PhotosLocation


Besano_Formation Latitude and Longitude:

45°54′N 8°54′E / 45.9°N 8.9°E / 45.9; 8.9
From Wikipedia, the free encyclopedia
Besano Formation
Stratigraphic range:
Late Anisian ( Illyrian)–Early Ladinian ( Fassanian) [1]
~242  Ma
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S
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C
P
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Type Geological formation
Underlies San Giorgio Dolomite
OverliesLower San Salvatore Dolomite
Lithology
Primary Dolomite, shale
Location
Coordinates 45°54′N 8°54′E / 45.9°N 8.9°E / 45.9; 8.9
Approximate paleocoordinates 7°30′N 21°00′E / 7.5°N 21.0°E / 7.5; 21.0
Region Lombardy, Piedmont,
Ticino
Country Italy
Switzerland
ExtentSouthwestern Limestone Alps
Type section
Named for Besano
Besano Formation is located in Switzerland
Besano Formation
Besano Formation (Switzerland)

The Besano Formation is a geological formation in the southern Alps of northwestern Italy and southern Switzerland. This formation, a thin but fossiliferous succession of dolomite and black shale, is famous for its preservation of Middle Triassic ( AnisianLadinian) marine life including fish and aquatic reptiles. It is exposed on Monte San Giorgio and is among the formations responsible for the area being designated as a UNESCO World Heritage Site. In Switzerland, it is also known as the Grenzbitumenzone. [2] [3] [1] [4] [5] [6] [7] [8] The Anisian-Ladinian boundary lies in the upper part of the Besano Formation. [1]

Geology

General geology

The Grenzbitumenzone is a relatively thin band of dark dolomite and shale, approximately 5 to 16 metres (16 to 52 ft) in total thickness. It extends about 10 kilometres (6.2 mi) from east to west along the northern edge of Monte San Giorgio. [1] [5] In individual outcrops, the Grenzbitumenzone overlies the lower part of San Salvatore Dolomite, a thick and widespread carbonate-rich formation. The later parts of the San Salvatore Formation, exposed north of Monte San Giorgio, are partially isochronous with the Grenzbitumenzone (formed at the same time). At its upper extent, the Grenzbitumenzone grades into the San Giorgio Dolomite, a formation with fewer fossils and a lower concentration of organic matter. The San Giorgio Dolomite itself is succeeded by the fossil-rich Meride Limestone. [2] [6]

As its name indicates, the sediments of the Grenzbitumenzone are bituminous, rich in organic matter to the point that they burn readily. Grey laminated (finely-layered) dolomite with about 20% organic matter comprises the majority of the formation. The width of laminae in these dolomite layers vary widely from sub-millimeter to sub-centimeter scales, as a function of mineral or grain size variation. Invertebrate fossils and isolated quartz grains are common in the dolomite, while vertebrates and radiolarian molds are preserved less often. Finely-laminated black shale with up to 40% organic matter makes up a smaller portion. Radiolarians and vertebrate fossils are common in the shale. However, invertebrates are practically absent, and crystals of dolomite and detrital quartz are rare. These major dolomite or shale layers show very little evidence of bioturbation or disturbance. [2] Pyrite is present but uncommon, likely a consequence of low iron availability. [2] [9] The organic matter can be characterized as type II kerogen, enriched in hopane and porphyrin compounds, though strongly depleted in Carbon-13. These biomarkers, when combined, indicate that most of the organic material was derived from cyanobacteria. [2] [3] [10]

Other sediments and rock types are uncommon in the formation. Thin layers of fine-grained laminated dolomite with a white color extend over a wide area. They have very little organic matter and instead contain shell fragments and peloids. This white dolomite likely represents distal turbidite deposits, collapsed from nearby carbonate sources. A similar origin is inferred for massive (unbedded) dolomite layers, which have a porous texture and heterogenous grain sizes. There is some evidence of reworking, as thin dolomite layers rarely show wavy layering or are ripped up into clasts by deep currents. The black shale layers occasionally preserve bands of chert, derived from radiolarian blooms. Numerous narrow bentonite layers ( volcanic tuffs) occur throughout the formation. They are mostly composed of illite and montmorillonite, with occasional crystals of sanidine. Unlike most Triassic tuffs from the Southern Alps, plagioclase crystals are completely absent. [2]

Palaeoenvironment

The formation is representative of a small intraplatform basin, a deep and stable marine environment which would have been positioned among shallow-water reefs and carbonate platforms. The carbonate platforms themselves are preserved in thick sequences, such as the San Salvatore Dolomite further north and west, and the Esino Limestone further east. The Grenzbitumenzone basin may be up to 20 km wide, if the Perledo-Varenna Formation east of Lake Como also belongs to the basin. [1] This system of carbonate platforms and basins developed along a western tongue of the Tethys Ocean, which transgressed eastwards during the Middle Triassic.

Alternations between dolomite and shale in the Grenzbitumenzone are probably a consequence of sea level fluctuations. Raised sea levels would have submerged the carbonate platforms, which may have enhanced dolomite deposition in the basin. [5] Alternatively, it would have connected the basin to other nutrient-rich areas, leading to phytoplankton blooms and thus more shale deposition. [10] Laminations within dolomite layers correspond to fluctuating carbonate levels, possibly linked to runoff from carbonate platforms during storms. [3]

The sediments of the Grenzbitumenzone are undisturbed by benthic (seabed-living) organisms, while well-preserved fossils, organic matter, and heavy metal ions are prevalent. This evidence supports the traditional view that the seabed of the basin was completely anoxic – stagnant, oxygen-deprived, and lifeless. [1] However, abundant fossils of nektonic (swimming) and planktonic (free-floating) life indicate that oxygen was more concentrated in seawater closer to the surface. There has been debate over the origin or intensity of this strong stratification in oxygen content. The basin, though relatively deep, was likely too shallow for stratification via deep saline currents or a strong temperature gradient. The traditional view places blame on a concentration of planktonic bacteria at mid-level in the water column, dividing an oxic upper part of the basin from the anoxic lower part. [2] [3] [1] There is little evidence for microbial activity on the seabed during the deposition of the Grenzbitumenzone. [10]

Later studies have argued that the seabed could have been dysoxic – with low oxygen levels, though still greater than in anoxic waters. [11] [5] Among the most common fossils belong to Daonella, a bivalve with strong debate over its habitat preferences. Early studies argued that it was pseudoplanktonic (attached to floating objects) or washed in from shallower areas, congruent with an anoxic Grenzbitumenzone seabed. However, Daonella is now believed to have lived in place at the bottom of the basin, specializing in a dysoxic environment inhospitable to most other benthic animals. [5] [12] Disarticulation and reorientation of Grenzbitumenzone fossils have favored the presence of weak and oxygenated bottom currents. [13] [11] [14] [15] Early evidence for bottom currents was controversial and perhaps based on a misdrawn illustration, [11] [1] [4] but further specimen sampling supports the same general conclusion. [14] [15] [8]

Taphonomy

Grenzbitumenzone fossils are usually well-preserved, but most are compressed between sediment layers. Compaction is much more pronounced in the thin shale layers than the thicker dolomite layers. Soft tissue preservation is rare but not unheard of: it includes calcified shark cartilage, phosphatized coprolites and gut contents, and organic remnants of reptile scales. In a dysoxic environment, preservation may have been facilitated by bacterial mats, adhering and sealing a skeleton onto the substrate. [5] [15] However, direct evidence for bacterial mats is not present. [10]

Two ways to quantify a skeleton’s preservation are completeness (the proportion of a skeleton present in a fossil) and articulation (the proportion of a skeleton preserved in life position). The completeness and articulation of Serpianosaurus fossils are variable, though are fairly high on average. The two factors are most clearly linked in the head, a heavy part of the skeleton which is most likely to sink first, detaching from the rest of a floating body. Even so, headless and relatively incomplete specimens are rare, so bodies are unlikely to fall apart while floating for an extended period. The vertebrae and ribs tend to be disarticulated, though only over a short distance. Peripheral elements such as the toes are also prone to disarticulation. Disarticulation is probably a result of subtle deep-water currents, during a long period of slow decay on the seabed. Heads and tails tend to curve in the same direction, which may be a consequence of current flow. [13] [14]

Saurichthys fossils of the Grenzbitumenzone are often well-preserved, though disarticulated and twisted specimens are more common than in the Cassina beds of the Meride Limestone. This may be due to the low sedimentation rate of the Grenzbitumenzone relative to the Meride Limestone, providing more time for the influence of bottom currents prior to burial. [15] The Cassina beds also have more direct evidence for microbial mats, which could have played a role in stabilizing decaying carcasses. [10]

Conversely, ichthyosaur fossils of the Grenzbitumenzone tend to have higher completeness than those found in Early Jurassic formations elsewhere in Europe. There is no specific region of the body with significantly lower completeness, arguing that the fossils were unaffected by preferential scavenging. Fossil completeness may have been enhanced by the relatively small and isolated nature of the Grenzbitumenzone basin, protected from the influence of stronger marine currents. [16]

Paleobiota

Reptiles

Archosauromorpha

Archosauromorphs of the Besano Formation
Genus Species Notes Images
Macrocnemus M. bassanii A fairly common basal tanystropheid up to 1.2 m (3.9 ft) in length. [8] It was an agile and terrestrial carnivore or insectivore, superficially similar (but unrelated) to monitor lizards, with a low skull, large eyes, a slender form, and a shorter neck than more derived tanystropheids. Like some living lizards, it may have been capable of running bipedally, thanks to its long tail and large hindlimbs. [17] [8] Known from multiple specimens, including nearly complete skeletons. [18] [19] [20] [8] [21]
M. cf. fuyuanensis A rare terrestrial basal tanystropheid. Only known from a disarticulated skeleton (PIMUZ T 1559) which is more similar to Macrocnemus fuyuanensis from the Zhuganpo Formation of China, rather than Macrocnemus bassanii. [22]
Tanystropheus T. hydroides [23] A large and fairly common tanystropheid with presumably semiaquatic habits. Previously considered an adult form ("large morphotype") of Tanystropheus longobardicus, but differentiated in 2020 according to histological work and distinctive skull characteristics, such as a flattened form and a "fish-trap" of long interlocking fangs. [24] One of the largest known non-archosaur archosauromorphs, up to 5.25 metres (17.2 feet) in total length, around half of which is neck. [23] Known from multiple specimens, including nearly complete skeletons.
T. longobardicus A small and common tanystropheid with presumably semiaquatic habits. When first described in the 1880s, it was misidentified as a pterosaur ("Tribelesodon"), but the discovery of more fossils in the 1920s allowed it to be recognized as a long-necked reptile instead. [25] Significantly smaller than T. hydroides, at less than 2 metres (6.6 feet) in length, [23] with a more triangular skull and tricuspid (three-pointed) teeth in the back of the jaw. [24] Known from many specimens, including nearly complete skeletons. [25] [26] [27] [28] [29]
Ticinosuchus [30] T. ferox [30] A pseudosuchian (crocodile-line) archosaur, one of the few terrestrial reptiles preserved in the formation. It was a large quadrupedal predator, primarily known from a complete skeleton (PIMUZ T 4779) reaching a length of 2.5 m (8.2 ft). [8] Upon its initial description in 1965, it was classified among a grade of archosaurs historically known as " rauisuchians". As one of the earliest "rauisuchians" known from good fossil remains (in terms of both geological age and history of study), it served to illucidate their anatomy and relation to enigmatic Chirotherium footprints. [30] [31] [32] [8] Ticinosuchus is currently considered a very close relative to Paracrocodylomorpha, the group of suchians encompassing other "rauisuchians" and their descendants, the crocodylomorphs. [32] [8]

Ichthyosauria

Ichthyosaurs of the Besano Formation
Genus Species Notes Images
Besanosaurus [33] B. leptorhynchus [33] A large merriamosaurian ichthyosaur, with a maximum length of around 8 meters (26 ft). [34] Its skull was relatively small but also extremely thin, suggesting that fish or squid may have been its primary prey. Besanosaurus is sometimes labelled as a " shastasaurid" due to its body form and position in ichthyosaur evolution, [33] [8] though its relations to other "shastasaurids" is not fully resolved. [35] Known from multiple specimens, including nearly complete skeletons. [34] Some smaller specimens were formerly named as Mikadocephalus gracilirostris, [36] [37] a species which is now generally regarded as a junior synonym. [38] [34]
Cymbospondylus C. buchseri [39] A large and rare cymbospondylid ichthyosaur based on a single partial skeleton (PIMUZ T 4351) with a skull 68 cm (2 ft 3 in) in length. Though one of the largest marine predators of the Besano Formation, with an estimated total length around 5.5 m (18 ft), it was a relatively small species of Cymbospondylus. [39] [8] The skeleton may belong to a juvenile, indicating that it could have grown larger. [40] [8]
Mixosaurus M. cornalianus A fairly small and common mixosaurid ichthyosaur, up to 1.5 m (4.9 ft) in length. [8] One of the earliest marine reptiles known to develop a dorsal fin, [41] as well as a viviparous mode of reproduction. [42] Known from many specimens, including nearly complete skeletons. [43] [44] [45] [46] [47] [48] [8]
M. kuhnschnyderi A small ichthyosaur based on a single specimen (PIMUZ T 1324). Initially named in its own genus, Sangiorgiosaurus. [45] [48] [8]
Phalarodon P. sp. A small ichthyosaur based on a single specimen (PIMUZ T 1311). Phalarodon was similar to Mixosaurus in many respects, differing primarily in its dentition. The teeth of Phalarodon were more robust, implying a more durophagous diet. [45] [48] [8] Some have argued that the purported Besano Formation Phalarodon should be referred to M. kuhnschnyderi. [40]
Wimanius [49] W. odontopalatus [49] A small ichthyosaur based on a single specimen (GPIT 1797) with a slender skull. [49] [37] [8] This skull fossil, though distinct from the skulls of Mikadocephalus, is also sometimes regarded as belonging to a juvenile Besanosaurus. [38] [40]

Sauropterygia

Sauropterygians of the Besano Formation
Genus Species Notes Images
Cyamodus C. hildegardis [50] A medium-sized cyamodontid placodont, about 1.3 m (4.3 ft) in length. Like most other advanced placodonts, it can be characterized by a triangular skull, crushing teeth, and a broad carapace (dorsal shell) made up of interlocking armor plates. [50] [51] [52] [53] [54] [8]
Eusaurosphargis [55] E. dalsassoi [55] A small and enigmatic reptile often classified near the base of Sauropterygia, potentially as a helveticosaurid. [55] Fossils from the Besano Formation are rare and fragmentary, [55] [8] but a nearly complete juvenile skeleton is known from the nearby Prosanto Formation, which was deposited around the same time. It had a wide body, thin armor, and small limbs which may point towards a terrestrial or semi-aquatic lifestyle. [56]
Helveticosaurus [57] H. zollingeri [57] A large and uncommon helveticosaurid, an enigmatic type of reptile sometimes classified as a basal sauropterygian. [58] It is known from a small number of fossils, including a nearly complete skeleton (PIMUZ T 4352) with a preserved length of 2.5 m (8.2 ft) and an estimated total length of 3.6 m (12 ft). This fossil shows an eclectic combination of features including a short snout, massive fang-like teeth, robust limbs, and a paddle-like tail. [57] [59] [60] [8] [58]
Nothosaurus N. giganteus A large nothosaur based on a complete skeleton with a skull 49 cm (1.61 ft) in length and a total body length of 3.8 m (12 ft). [8] Apart from ichthyosaurs, it was likely the most massive marine predators known from the formation, and one of the largest known nothosaurs. Nothosaurs are far less common in the Besano Formation compared to succeeding layers or other European marine deposits of the Middle Triassic. The gigantic skeleton was initially given the name Paranothosaurus amsleri, [61] [62] but it has subsequently been referred to Nothosaurus giganteus. [63] [8]
N. cf. juvenilis A small nothosaur based on a disarticulated skeleton. [64]
Odoiporosaurus [65] O. terruzzii [65] A rare pachypleurosaur known from a single partial skeleton discovered in very early layers of the Besano Formation. [65] [8]
Paraplacodus [66] P. broilii [66] A medium-sized basal placodont, with the most complete skeleton approaching 1.5 m (4.9 ft) in length. It had a stocky but unarmored body, a long tail, and a skull with both protruding teeth (at the front) and blunt crushing teeth (at the back). This dentition, though not as specialized as the completely flat teeth of more derived placodonts, was still well-suited for a durophagous diet. [66] [67] [68] [8] [69]
Serpianosaurus [70] S. mirigolensis [70] An abundant small pachypleurosaur (maximum length of 75 cm (2.46 ft)) [70] [8] known from numerous skeletons of varying preservation quality. One of the most distinctive and common marine reptiles of the formation. Many fossils of this species were previously lumped under "Pachypleurosaurus" edwardsii or " Phygosaurus perledicus", as the systematics of Monte San Giorgio pachypleurosaurs remained poorly resolved until 1989. [70] [14] [8] Like other pachypleurosaurs, it was a slender reptile with long extremities and a semiaquatic or fully aquatic lifestyle. In younger strata exposed on Monte San Giorgio above the Besano Formation, Serpianosaurus is succeeded by several species of Neusticosaurus. [70] [8]
Silvestrosaurus [71] S. buzzii [72] A fairly small lariosaurine nothosaur known from a single incomplete skeleton (PIMUZ T 2804) [71] with a skull 8 cm (3.1 in) in length. [8] It was originally named as a species of Lariosaurus, a nothosaur genus which is prevalent in other Middle Triassic marine deposits in the area. [72] [73] [74] [8]

Thalattosauria

Thalattosaurs of the Besano Formation
Genus Species Notes Images
Askeptosaurus A. italicus A medium-sized askeptosauroid, around 2.5–3 m (8.2–9.8 ft) in length. [75] [8] It had a long snout filled with slender homodont teeth, a long tail, and comparatively unspecialized limbs retaining claws. Known from multiple specimens, including nearly complete skeletons. [76] [77] [75] [8]
Clarazia [78] C. schinzi [78] A rather small and rare claraziid thalattosauroid, at least 1 m (3.3 ft) in length. [8] Known from a complete skeleton (PIMUZ T 4778) with small limbs and a robust skull bearing blunt teeth suitable for a durophagous diet. [78] [79] [8]
Hescheleria [80] H. rubeli [80] A rather small and rare claraziid thalattosauroid, around 1 m (3.3 ft) in length. [8] Known from a disarticulated skeleton (PIMUZ T 2469), with the skull reconstructed as having an unusual downturned snout and a conical structure on the lower jaw. [80] [79] [8]

Fish

Sarcopterygians (lobe-finned fish)

Sarcopterygians of the Besano Formation
Genus Species Notes Images
Holophagus? cf. H. picenus A large coelacanth based on scales and fragments of the skull and tail fin. It is tentatively referable to Holophagus picenus (also known as Undina picnea), a fragmentary Triassic coelacanth species described from the Dolomia Principale in the 19th century. [81] [8]
Rieppelia [82] R. heinzfurreri [82] A large (63 cm (2.07 ft) long) latimeriid coelacanth. Like its sister taxon Foreyia, it was a particularly specialized member of the subfamily Ticinepomiinae, with a massive blunt-snouted skull and a relatively short body. [82]
Ticinepomis [83] T. peyeri [83] A small (18 cm (7.1 in) long) latimeriid coelacanth [8] [82] It was a rather unspecialized member of the subfamily Ticinepomiinae, lacking the unusual proportions of Foreyia and Rieppelia. [82]

Actinopterygians (ray-finned fish)

The actinopterygian fauna of the Besano Formation was described in detail by James Brough (1939) [84] and Toni Bürgin (1992). [85] [86] [87]

Actinopterygians of the Besano Formation
Genus Species Notes Images
Aetheodontus A. besanensis A very small (5.5 cm (2.2 in) long) [88] " perleidid" neopterygian with crushing-style dentition. [8]
Altisolepis [88] A. bellipinnis A small (7 cm (2.8 in) long) [88] "perleidid" neopterygian with deepened flank scales. Previously considered a species of Peltoperleidus.
A. elongignathus A small "perleidid" neopterygian with deepened flank scales. Previously considered a species of Peltoperleidus.
Besania? B. micrognathus A very small (4.4 cm (1.7 in) long) [88] halecostomian neopterygian with deepened flank scales, provenance uncertain.
Birgeria B. stensioei A predatory and pelagic birgeriid chondrostean, by far the largest actinopterygian in the formation. The best-preserved skeleton from the Besano Formation (and the best fossil of the entire genus) was around 1.2 m (3.9 ft) in length, though even larger specimens could reach 2 m (6.6 ft). [89] [90] [8]
Bobasatrania B. ceresiensis A medium-sized and deep-bodied bobasatraniiform chondrostean. [8]
Cephaloxenus C. macropterus A small (10 cm (3.9 in) long) [88] peltopleuriform neopterygian with deepened flank scales.
C. squamiserratus A small peltopleuriform neopterygian
Colobodus C. bassanii A large colobodontid neopterygian up to 70 cm (2.3 ft) in length. It was a strongly-built and durophagous fish, with crushing-style dentition for eating hard-shelled invertebrates. Some sources have suggested that Colobodus is a wastebasket taxon which should be split into multiple genera and species. [8]
Crenilepis C. "divaricatus" A large colobodontid neopterygian similar to Colobodus, if not synonymous. [8]
Ctenognathichthys C. bellottii A medium-sized (17 cm (6.7 in) long) [8] " perleidiform" neopterygian with grasping-style [8] dentition. [91]
Eoeugnathus E. megalepis A small halecomorph neopterygian. [92]
Eosemionotus E. ceresiensis A small macrosemiid ginglymodian. [93]
Gracilignathichthys G. microlepis A medium-sized (15 cm (5.9 in) long) [88] pholidopleuriform neopterygian
Gyrolepis G. sp. A palaeoniscid actinopterygian primarily based on scales
Habroichthys H. griffithi A medium-sized peltopleuriform neopterygian
Luganoia L. lepidosteoides A very small (5 cm (2.0 in) long) [88] luganoiiform neopterygian with deepened flank scales.
Meridensia M. meridensis A small (10 cm (3.9 in) long) [88] "perleidid" neopterygian with deepened flank scales and crushing-style dentition. [8]
Nannolepis N. sp. A small peltopleuriform neopterygian
Ophiopsis O. sp. A small halecomorph neopterygian
Peltoperleidus P. ducanensis A very small (4.1 cm (1.6 in) long) "perleidid" neopterygian with deepened flank scales and seizing-style dentition. [88] [8]
P. macrodontus A small "perleidid" neopterygian. [88]
P. obristi A small "perleidid" neopterygian. [88]
P. triseries A small "perleidid" neopterygian. [88]
Peltopleurus [94] P. lissocephalus A very small (5.5 cm (2.2 in) long) [88] peltopleuriform neopterygian with deepened flank scales, robust grasping-style [8] dentition, and an anal fin modified into a conical reproductive organ. [94] [8]
P. nothocephalus A small peltopleuriform neopterygian.
P. rugosus A small peltopleuriform neopterygian. [94]
Peripeltopleurus P. vexillipinnis A small (6.5 cm (2.6 in) long) [88] peltopleuriform neopterygian with deepened flank scales.
Pholidopleurus P. ticinensis A small (10 cm (3.9 in) long) [88] to medium-sized pholidopleuriform neopterygian with deepened flank scales.
Placopleurus P. besanensis A very small peltopleuriform neopterygian
P. gracilis A very small peltopleuriform neopterygian
Platysiagum P. minus A small (9 cm (3.5 in) long) [88] platysiagid neopterygian
Ptycholepis P. barboi A medium-sized ptycholepiform actinopterygian
P. magnus A medium-sized ptycholepiform actinopterygian
P. priscus A medium-sized ptycholepiform actinopterygian
P. schaefferi A medium-sized ptycholepiform actinopterygian
Saurichthys S. breviabdominalis [95] A medium-sized (>36 cm (14 in) long) [95] saurichthyid chondrostean. It had a relatively stout build, reduced dentition, and laterally-oriented eyes relative to other Saurichthys species. [95] [8]
S. costasquamosus A very large and particularly elongated saurichthyid chondrostean, up to 80 cm (2.6 ft) in length. It had a fairly thin snout, well-developed dentition, and dorsolaterally-oriented eyes, suggesting it was adapted for hunting in the upper layers of the water column. [96] [95] [8]
S. paucitrichus A medium-sized (25 cm (9.8 in) long) saurichthyid chondrostean, with a very thin snout and reduced dentition. It was intermediate in form (and presumably ecology) between S. breviabdominalis and S. costasquamosus. [97] [95] [8]
S. rieppeli [95] A large (60 cm (2.0 ft) long) [95] saurichthyid chondrostean. Compared to the other three species from the Besano Formation, it had strongly reduced scalation more similar to fully pelagic saurichthyids. [95] [8]
Stoppania [98] S. ornata A small and deep-bodied polzbergiid neopterygian. Previously considered a species of Dipteronotus.
Ticinolepis [7] T. crassidens [7] A small (11 cm (4.3 in) long) basal ginglymodian with a durophagous diet, previously referred to Archaeosemionotus
T. longaeva [7] A medium-sized (25 cm (9.8 in) long) basal ginglymodian, previously referred to Archaeosemionotus

Chondrichthyes (cartilaginous fish)

Chondrichthyans of the Besano Formation
Genus Species Notes Images
Acrodus A. georgii A large and fairly common hybodont shark with a durophagous diet. Known from a variety of fossil remains, including disarticulated cartilaginous skeletons, articulated dentition, and dorsal fin spines. Some fin spines could reach 31.1 cm (12.2 in) in height, indicating a total body length of 2–3 m (6.6–9.8 ft). [99] [100] [8]
Acronemus [101] A. tuberculatus A small euselachian shark, around 30–35 cm (12–14 in) in total length. [101] [8] Its affinities are unclear: its fin spines are structurally similar to ctenacanths, [101] the teeth are closer to durophagous hybodonts, and the braincase shows similarities to both hybodonts and neoselachians (modern-style sharks). [102] [8] Fossils of this species were previously classified as Nemacanthus tuberculatus (fin spines) and Acrodus bicarinatus (teeth). [101] [8]
Asteracanthus ( Strophodus) A. reticulatus A large durophagous hybodont shark, variably placed within the genus Asteracanthus [101] [8] or Strophodus. [103] In either case, the Besano Formation has produced the oldest remains of this long-lasting form, with both flat, hypermineralized teeth and ridged scales recovered from the formation. [8]
Hybodus H. cf. plicatilis A large hybodont shark, known from rare teeth indicative of a predatory diet. [8]
Palaeobates P. angustissimus A medium-sized durophagous hybodont shark. One partial skeleton (specimen PIMUZ T 3838) has a fin spine 13.8 cm (5.4 in) in height. [100] [8]

Cephalopods

The cephalopod fauna of the Besano Formation was described in detail by Hans Rieber in the 1960s and 1970s. [104] [105] [106] [107] [108] [109] Most fossils are concentrated at Point 902, occupying several distinct biostratigraphic zones recorded through the outcrop, bed-by-bed. [106] [110]

Cephalopods of the Besano Formation
Genus Species Notes Images
Celtites C. sp. A danubitid ceratite ammonoid
Breviconoteuthis B. breviconus A phragmoteuthid coleoid
Chieseiceras C. chiesense A ceratitid ceratite ammonoid
Enoploceras E. riebari [110] A tainoceratid nautiloid [110]
Epigymnites E. ecki A gymnitid ceratite ammonoid
Flexoptychites F. acutus A ptychitid ceratite ammonoid
Germanonautilus G. aff. ellipticus A tainoceratid nautiloid [110]
Gymnites G. cf. bosnensis A gymnitid ceratite ammonoid
Lecanites L. misanii A lecanitid ceratite ammonoid
Longobardites L. zsigmondyi A longobarditid ceratite ammonoid
Mojsisovicsteuthis M. boeckhi An enigmatic coleoid
M.? meneghini
M.? cf. subrotundus
Monophyllites M. sp. A ussuritid ceratite ammonoid
Nevadites N. ambrosionii A ceratitid ceratite ammonoid
Norites N. gondola A noritid ceratite ammonoid
Parakellnerites P. carinatus A ceratitid ceratite ammonoid
P. frauenfelderi
P. merianii
Phragmoteuthis P.? ticinensis [105] A phragmoteuthid coleoid based on soft-tissue remains lacking shell material.
Proarcestes P. extralabiatus An arcestid ceratite ammonoid
Repossia R. acutenodosa A ceratitid ceratite ammonoid
Serpianites S. airaghii A ceratitid ceratite ammonoid
S. curionii
S. serpianensis
S. zinae
Syringonautilus S. sp. A syringonautilid nautiloid [110]
Stoppaniceras S. artinii A ceratitid ceratite ammonoid
S. grandinodosus
S. variabile
Ticinites T. polymorphus A ceratitid ceratite ammonoid
T. ticinensis
Ticinoteuthis [111] T. chuchichaeschtli [111] A straight-shelled coleoid similar to Mojsisovicsteuthis
Trematoceras T. elegans A pseudorthocerid nautiloid. Some specimens were previously described as " Michelinoceras" campanile. [111]

Other molluscs

Some of the most abundant fossils in the Besano Formation belong to the bivalve Daonella, with multiple species evolving in a sequence through the formation (according to the stratigraphic implications of Point 902). [104] [112] [113] [107] [12] [114]

Non-cephalopod molluscs of the Besano Formation
Genus Species Notes Images
Bakevellia A rare bivalve [4]
Daonella D. airaghii [112] An abundant halobiid bivalve
D. angulata [112]
D. caudata
D. elongata
D. fascicostata [113]
D. golana [113]
D. luganensis [113]
D. obtusa [112]
D. pseudomoussoni [113]
D. serpianensis [112]
D. ticinensis [113]
D. vaceki
Frederikella F. cf. cancellata A liotiid gastropod [115]
Gervillia A rare bivalve [104] [4] [5]
Omphaloptycha O. spp. A coelostylinid gastropod [115]
Peribositria A rare posidoniid bivalve [4]
Worthenia W.? aff. microstriata A lophospirid gastropod [115]
Trachynerita T. sp. A neritariid neritoid gastropod [115]

Other invertebrates

Plants

References

  1. ^ a b c d e f g h Furrer, Heinz (1995). "The Kalkschieferzone (Upper Meride Limestone, Ladinian) near Meride (Canton Ticino, Southern Switzerland) and the evolution of a Middle Triassic intraplatform basin". Eclogae Geologicae Helvetiae. 88 (3): 827–852.
  2. ^ a b c d e f g Bernasconi, Stefano Michele (1991). Geochemical and microbial controls on dolomite formation and organic matter production/preservation in anoxic environments: a case study from the Middle Triassic Grenzbitumenzone, Southern Alps (Ticino, Switzerland). ETH Zurich Dissertation (Doctoral Thesis). pp. 1–198. doi: 10.3929/ethz-a-000611458. hdl: 20.500.11850/140499.
  3. ^ a b c d Bernasconi, S.; Riva, A. (1993). "15 - Organic Geochemistry and Depositional Environment of a Hydrocarbon Source Rock: the Middle Triassic Grenzbitumenzone Formation. Southern Alps. Italy/Switzerland.". In Spencer, A.M. (ed.). Generation. Accumulation and Production of Europe's Hydrocarbons III. European Association of Petroleum Geologists. pp. 179–190.
  4. ^ a b c d e f g h Röhl, H.J.; Schmid-Röhl, A.; Furrer, H.; Frimmel, A.; Oschmann, W.; L., Schwark (2001). "Microfacies, geochemistry and palaeoecology of the Middle Triassic Grenzbitumenzone from Monte San Giorgio (Canton Ticino, Switzerland)". Geologia Insubria. 6 (1): 1–13.
  5. ^ a b c d e f g h Etter, Walter (2002). "Monte San Giorgio: remarkable Triassic marine vertebrates". In Bottjer, D.J.; Etter, W.; Hagadorn, J.W.; Tang, C.M. (eds.). Exceptional fossil preservation; a unique view on the evolution of marine life. New York: Columbia University Press. pp. 220–242.
  6. ^ a b Stockar, Rudolf; Baumgartner, Peter O.; Condon, Daniel (15 May 2012). "Integrated Ladinian bio-chronostratigraphy and geochrononology of Monte San Giorgio (Southern Alps, Switzerland)" (PDF). Swiss Journal of Geosciences. 105 (1): 85–108. doi: 10.1007/s00015-012-0093-5. ISSN  1661-8734. S2CID  129644478.
  7. ^ a b c d López-Arbarello, Adriana; Bürgin, Toni; Furrer, Heinz; Stockar, Rudolf (2016-07-19). "New holostean fishes (Actinopterygii: Neopterygii) from the Middle Triassic of the Monte San Giorgio (Canton Ticino, Switzerland)". PeerJ. 4: e2234. doi: 10.7717/peerj.2234. ISSN  2167-8359. PMC  4957996. PMID  27547543.
  8. ^ a b c d e f g h i j k l m n o p q r s t u v w x y z aa ab ac ad ae af ag ah ai aj ak al am an ao ap aq ar as at au av aw ax ay az ba bb bc bd be bf bg Rieppel, Olivier (2019). Mesozoic Sea Dragons: Triassic Marine Life from the Ancient Tropical Lagoon of Monte San Giorgio. Bloomington, IN: Indiana University Press. ISBN  978-0-253-04013-8. JSTOR  j.ctvd58t86.
  9. ^ Stockar, Rudolf (2010-07-01). "Facies, depositional environment, and palaeoecology of the Middle Triassic Cassina beds (Meride Limestone, Monte San Giorgio, Switzerland)" (PDF). Swiss Journal of Geosciences. 103 (1): 101–119. doi: 10.1007/s00015-010-0008-2. ISSN  1661-8734. S2CID  129454913.
  10. ^ a b c d e Stockar, Rudolf; Adatte, Thierry; Baumgartner, Peter O.; Föllmi, Karl B. (2013). "Palaeoenvironmental significance of organic facies and stable isotope signatures: the Ladinian San Giorgio Dolomite and Meride Limestone of Monte San Giorgio (Switzerland, WHL UNESCO)". Sedimentology. 60 (1): 239–269. Bibcode: 2013Sedim..60..239S. doi: 10.1111/sed.12021. ISSN  1365-3091. S2CID  129472649.
  11. ^ a b c Tintori, Andrea (1992). "Fish Taphonomy and Triassic Anoxic Basins from the Alps: A Case History". Rivista Italiana di Paleontologia e Stratigrafia. 97 (3–4). doi: 10.13130/2039-4942/8956. ISSN  2039-4942.
  12. ^ a b Schatz, Wolfgang (2005-02-01). "Palaeoecology of the Triassic black shale bivalve Daonella—new insights into an old controversy". Palaeogeography, Palaeoclimatology, Palaeoecology. 216 (3): 189–201. Bibcode: 2005PPP...216..189S. doi: 10.1016/j.palaeo.2004.11.002. ISSN  0031-0182.
  13. ^ a b Sander, P. M.; Greenwood, Peter Humphry (1989-11-30). "The pachypleurosaurids (Reptilia: Nothosauria) from the Middle Triassic of Monte San Giorgio (Switzerland) with the description of a new species". Philosophical Transactions of the Royal Society of London. B, Biological Sciences. 325 (1230): 561–666. Bibcode: 1989RSPTB.325..561S. doi: 10.1098/rstb.1989.0103. PMID  2575768.
  14. ^ a b c d Beardmore, S. R.; Orr, P. J.; Manzocchi, T.; Furrer, H.; Johnson, C. (2012-06-15). "Death, decay and disarticulation: Modelling the skeletal taphonomy of marine reptiles demonstrated using Serpianosaurus (Reptilia; Sauropterygia)". Palaeogeography, Palaeoclimatology, Palaeoecology. 337–338: 1–13. Bibcode: 2012PPP...337....1B. doi: 10.1016/j.palaeo.2012.03.018. ISSN  0031-0182.
  15. ^ a b c d Beardmore, Susan R.; Furrer, Heinz (2016-06-01). "Taphonomic analysis of Saurichthys from two stratigraphic horizons in the Middle Triassic of Monte San Giorgio, Switzerland". Swiss Journal of Geosciences. 109 (1): 1–16. doi: 10.1007/s00015-015-0194-z. ISSN  1661-8734. S2CID  131946549.
  16. ^ Beardmore, Susan R.; Furrer, Heinz (2016-02-01). "Evidence of a preservational gradient in the skeletal taphonomy of Ichthyopterygia (Reptilia) from Europe". Palaeogeography, Palaeoclimatology, Palaeoecology. 443: 131–144. Bibcode: 2016PPP...443..131B. doi: 10.1016/j.palaeo.2015.11.049. ISSN  0031-0182.
  17. ^ Rieppel, Olivier (1989). "The Hind Limb of Macrocnemus bassanii (Nopcsa) (Reptilia, Diapsida): Deverlopment and Functional Anatomy". Journal of Vertebrate Paleontology. 9 (4): 373–387. doi: 10.1080/02724634.1989.10011771. JSTOR  4523279.
  18. ^ Peyer, Bernhard (1937). "Die Triasfauna der Tessiner Kalkalpen XII. Macrocnemus bassanii Nopcsa". Abhandlungen der Schweizerischen Paläontologischen Gesellschaft. 54: 1–87.
  19. ^ Kuhn-Schnyder, Emil (1962). "Ein weiterer Schädel von Macrocnemus bassanii Nopcsa aus der anisischen Stufe der Trias des Monte San Giorgio (Kt. Tessin, Schweiz)". Paläontologische Zeitschrift (in German). 36 (S1): 110–133. doi: 10.1007/BF02987896. ISSN  0031-0220. S2CID  129660030.
  20. ^ Renesto, Silvio; Avanzini, Marco (2002). "Skin remains in a juvenile Macrocnemus bassanii Nopsca (Reptilia, Prolacertiformes) from the Middle Triassic of Northern Italy". Neues Jahrbuch für Geologie und Paläontologie. 224 (1): 31–48. doi: 10.1127/njgpa/224/2002/31.
  21. ^ Miedema, Feiko; Spiekman, Stephan N. F.; Fernandez, Vincent; Reumer, Jelle W. F.; Scheyer, Torsten M. (24 July 2020). "Cranial morphology of the tanystropheid Macrocnemus bassanii unveiled using synchrotron microtomography". Scientific Reports. 10 (1): 12412. doi: 10.1038/s41598-020-68912-4. hdl: 10141/622897. ISSN  2045-2322.
  22. ^ Jaquier, Vivien P.; Fraser, Nicholas C.; Furrer, Heinz; Scheyer, Torsten M. (2017). "Osteology of a New Specimen of Macrocnemus aff. M. fuyuanensis (Archosauromorpha, Protorosauria) from the Middle Triassic of Europe: Potential Implications for Species Recognition and Paleogeography of Tanystropheid Protorosaurs". Frontiers in Earth Science. 5: 91. Bibcode: 2017FrEaS...5...91J. doi: 10.3389/feart.2017.00091. ISSN  2296-6463.
  23. ^ a b c Spiekman, Stephan N. F.; Neenan, James M.; Fraser, Nicholas C.; Fernandez, Vincent; Rieppel, Olivier; Nosotti, Stefania; Scheyer, Torsten M. (2020-08-06). "Aquatic Habits and Niche Partitioning in the Extraordinarily Long-Necked Triassic Reptile Tanystropheus". Current Biology. 30 (19): 3889–3895.e2. Bibcode: 2020CBio...30E3889S. doi: 10.1016/j.cub.2020.07.025. hdl: 10141/622898. ISSN  0960-9822. PMID  32763168. S2CID  221012988.
  24. ^ a b Spiekman, Stephan N.F.; Neenan, James M.; Fraser, Nicholas C.; Fernandez, Vincent; Rieppel, Olivier; Nosotti, Stefania; Scheyer, Torsten M. (2020-11-20). "The cranial morphology of Tanystropheus hydroides (Tanystropheidae, Archosauromorpha) as revealed by synchrotron microtomography". PeerJ. 8: e10299. doi: 10.7717/peerj.10299. ISSN  2167-8359. PMC  7682440. PMID  33240633.
  25. ^ a b Peyer, Bernhard (1931). "Die Triasfauna der Tessiner Kalkalpen II. Tanystropheus longobardicus Bass. sp". Abhandlungen der Schweizerischen Paläontologischen Gesellschaft. 50: 9–110.
  26. ^ Renesto, S. (2005). "A new specimen of Tanystropheus (Reptilia, Protorosauria) from the Middle Triassic of Switzerland and the ecology of the genus". Rivista Italiana di Paleontologia e Stratigrafia. 111 (3): 377–394.
  27. ^ Nossotti, Stefania (2007). "Tanystropheus longobardicus (Reptilia Protorosauria): Re-interpretations of the anatomy based on new specimens from the Middle Triassic of Besano (Lombardy, northern Italy)". Memorie della Societa Italiana di Scienze Naturali e del Museo Civico di Storia Naturale di Milano. 35 (3).
  28. ^ Renesto, Silvio; Saller, Franco (2018). "EVIDENCES FOR A SEMI AQUATIC LIFE STYLE IN THE TRIASSIC DIAPSID REPTILE TANYSTROPHEUS". Rivista Italiana di Paleontologia e Stratigrafia (Research in Paleontology and Stratigraphy). 124 (1): N. 1 (2018). doi: 10.13130/2039-4942/9541. ISSN  2039-4942.
  29. ^ Spiekman, Stephan N. F.; Scheyer, Torsten M. (2019-12-16). "A taxonomic revision of the genus Tanystropheus (Archosauromorpha, Tanystropheidae)". Palaeontologia Electronica. 22 (3): 1–46. doi: 10.26879/1038. ISSN  1094-8074. S2CID  211105850.
  30. ^ a b c Krebs, B. (1965). "Ticinosuchus ferox nov. gen. nov. sp. Ein neuer Pseudosuchier aus der Trias des Monte San Giorgio". Neues Jahrbuch fur Geologie und Paläontology, Abhandlungen. 81: 1–140.
  31. ^ Lautenschlager, Stephan; Desojo, Julia Brenda (2011-04-13). "Reassessment of the Middle Triassic rauisuchian archosaurs Ticinosuchus ferox and Stagonosuchus nyassicus". Paläontologische Zeitschrift. 85 (4): 357–381. Bibcode: 2011PalZ...85..357L. doi: 10.1007/s12542-011-0105-1. hdl: 11336/68929. ISSN  0031-0220. S2CID  86671911.
  32. ^ a b Sterling J. Nesbitt (2011). "The Early Evolution of Archosaurs: Relationships and the Origin of Major Clades". Bulletin of the American Museum of Natural History. 352: 1–292. doi: 10.1206/352.1. hdl: 2246/6112. S2CID  83493714.
  33. ^ a b c Dal Sasso, C.; Pinna, G. (1996). "Besanosaurus leptorhynchus n. gen. n. sp., a new shastasaurid ichthyosaur from the Middle Triassic of Besano (Lombardy, N. Italy)". Paleontologia Lombarda. 4: 3–23.
  34. ^ a b c Bindellini, G.; Wolniewicz, A.S.; Miedema, F.; Scheyer, T.M.; Dal Sasso, C. (2021). "Cranial anatomy of Besanosaurus leptorhynchus Dal Sasso & Pinna, 1996 (Reptilia: Ichthyosauria) from the Middle Triassic Besano Formation of Monte San Giorgio, Italy/Switzerland: taxonomic and palaeobiological implications". PeerJ. 9: e11179. doi: 10.7717/peerj.11179. PMC  8106916. PMID  33996277.
  35. ^ Motani, R. (1999). "Phylogeny of the Ichthyopterygia" (PDF). Journal of Vertebrate Paleontology. 19 (3): 473–496. Bibcode: 1999JVPal..19..473M. doi: 10.1080/02724634.1999.10011160. Archived from the original (PDF) on 2012-04-15.
  36. ^ Maisch, M.W.; Matzke, A.T. (1997). "Mikadocephalus gracilirostris n. gen., n. sp., a new ichthyosaur from the Grenzbitumenzone (Anisian-Ladinian) of Monte San Giorgio (Switzerland)". Paläontologische Zeitschrift. 71 (3): 267–289. Bibcode: 1997PalZ...71..267M. doi: 10.1007/BF02988496. S2CID  129713553.
  37. ^ a b Maisch, M.W.; Matzke, A.T. (1999). "Observations on Triassic ichthyosaurs. Part V. The skulls of Mikadocephalus and Wimanius reconstructed". Neues Jahrbuch für Geologie und Paläontologie, Monatshefte. 1999 (6): 345–356. doi: 10.1127/njgpm/1999/1999/345.
  38. ^ a b Sander, P.M. (2000). "Ichthyosauria: Their diversity, distribution, and phylogeny". Paläontologische Zeitschrift. 74 (1): 1–35. doi: 10.1007/BF02987949. S2CID  85352593.
  39. ^ a b Sander, P. Martin (1989-06-30). "The large ichthyosaur Cymbospondylus buchseri, sp. nov., from the Middle Triassic of Monte San Giorgio (Switzerland), with a survey of the genus in Europe". Journal of Vertebrate Paleontology. 9 (2): 163–173. Bibcode: 1989JVPal...9..163S. doi: 10.1080/02724634.1989.10011750. ISSN  0272-4634.
  40. ^ a b c McGowan, C.; Motani, R. (2003). Sues, H.D. (ed.). Handbook of Paleoherpetology Part 8: Ichthyopterygia. Munich: Verlag Dr. Friedrich Pfeil. ISBN  3899370074.
  41. ^ Renesto, Silvio; Dal Sasso, Cristiano; Fogliazza, Fabio; Ragni, Cinzia (2020). "New findings reveal that the middle Triassic ichthyosaur Mixosaurus cornalianus is the oldest amniote with a dorsal fin". Acta Palaeontologica Polonica. 65. doi: 10.4202/app.00731.2020. ISSN  0567-7920. S2CID  222285117.
  42. ^ Brinkmann, W. (1996). "Ein Mixosaurier (Reptilia, Ichthyosauria) mit Embryonen aus der Grenzbitumenzone des Monte San Giorgio (Schweiz, Kanton Tessin)". Eclogae Geologicae Helvetiae. 89 (3): 1321–1344.
  43. ^ Callaway, Jack M. (1997), Callaway, Jack M.; Nicholls, Elizabeth L. (eds.), "A New Look at Mixosaurus", Ancient Marine Reptiles, San Diego: Academic Press, pp. 45–59, ISBN  978-0-12-155210-7, retrieved 2024-04-05
  44. ^ Brinkmann, W. (1998). "Die Ichthyosaurier (Reptilia) aus der Grenzbitumenzone (Mitteltrias) des Monte San Giorgio (Tessin, Schweiz) - neue Ergebnisse". Vierteljahrschrift der Naturforschenden Gesellschaft Zürich. 143 (4): 165–177.
  45. ^ a b c Brinkmann, W. (1998). "Sangiorgiosaurus n.g. - eine neue Mixosaurier-Gattung (Mixosauridae, Ichthyosauria) mit Quetschzähnen aus der Grenzbitumenzone (Mitteltrias) des Monte San Giorgio (Schweiz, Kanton Tessin)". Neues Jahrbuch für Geologie und Paläontologie, Abhandlungen. 207 (1): 125–144.
  46. ^ Motani, Ryosuke (1999). "The skull and taxonomy of Mixosaurus (Ichthyopterygia)". Journal of Paleontology. 73 (5): 924–935. doi: 10.1017/S0022336000040750. ISSN  0022-3360.
  47. ^ Brinkmann, W. (1999). "Ichthyosaurus cornalianus Bassani, 1866 (currently Mixosaurus cornalianus, Reptilia, Ichthyosauria); proposed designation of a neotype". Bulletin of Zoological Nomenclature. 56 (4): 247–249.
  48. ^ a b c Brinkmann, W. (2004). "Mixosaurier (Reptilia, Ichthyosauria) mit Quetschzähnen aus der Grenzbitumenzone (Mitteltrias) des Monte San Giorgio (Schweiz, Kanton Tessin)". Schweizerische paläontologische Abhandlungen. 124: 1–88.
  49. ^ a b c Maisch, M.W.; Matzke, A.T. (1998). "Observations on Triassic ichthyosaurs. Part II: A new ichthyosaur with palatal teeth from Monte San Giorgio". Neues Jahrbuch für Geologie und Paläontologie, Monatshefte. 1998 (1): 26–41. doi: 10.1127/njgpm/1998/1998/26.
  50. ^ a b Peyer, B. (1931). "Die Triasfauna der Tessiner Kalkalpen. III. Placodontia". Abhandlungen der schweizerischen Paläontologischen Gesellschaft. 51: 1–125.
  51. ^ Peyer, B. (1935). "Die Triasfauna der Tessiner Kalkalpen. VIII. Weitere Placodontierfunde". Abhandlungen der schweizerischen Paläontologischen Gesellschaft. 55: 1–26.
  52. ^ Pinna, G. (1992). "Cyamodus hildegardis Peyer, 1931 (Reptilia, Placodontia)". Memorie della Società Italiana di Scienze Naturali e del Museo Civico di Storia Naturale di Milano. 26: 1–21.
  53. ^ Rieppel, Olivier (2001). "The cranial anatomy of Placochelys placodonta Jaekel, 1902, and a review of the Cyamodontoidea (Reptilia, Placodonta)". Fieldiana (Geology), New Series. 45: 1–104.
  54. ^ Rieppel, Olivier (2002). "The dermal armor of cyamodontoid placodonts (Reptilia, Sauropterygia): morphology and systematic value". Fieldiana (Geology), New Series. 46: 1–41.
  55. ^ a b c d Nosotti, Stefania; Rieppel, Olivier (2003). "Eusaurosphargis dalsassoi n. gen. n. sp., a new, unusual diapsid reptile from the Middle Triassic of Besano (Lombardy, N Italy)". Memorie della Societa Italiana di Scienze Naturali e del Museo Civico di Storia Naturale di Milano Ile. 31 (3): 1–33.
  56. ^ Scheyer, Torsten M.; Neenan, James M.; Bodogan, Timea; Furrer, Heinz; Obrist, Christian; Plamondon, Mathieu (2017-06-30). "A new, exceptionally preserved juvenile specimen of Eusaurosphargis dalsassoi (Diapsida) and implications for Mesozoic marine diapsid phylogeny". Scientific Reports. 7 (1): 4406. Bibcode: 2017NatSR...7.4406S. doi: 10.1038/s41598-017-04514-x. ISSN  2045-2322. PMC  5493663. PMID  28667331.
  57. ^ a b c Peyer, Bernhard (1955). "Die Triasfauna der Tessiner Kalkalpen. XVIII. Helveticosaurus zollingeri, n.g. n.sp". Schweizerische Paläontologische Abhandlungen. 72: 3–50.
  58. ^ a b Bindellini, Gabriele; Sasso, Cristiano Dal (2022-10-04). "FIRST SKELETAL REMAINS OF HELVETICOSAURUS FROM THE MIDDLE TRIASSIC ITALIAN OUTCROPS OF THE SOUTHERN ALPS, WITH REMARKS ON AN ISOLATED TOOTH". Rivista Italiana di Paleontologia e Stratigrafia. 128 (3). doi: 10.54103/2039-4942/17397. ISSN  2039-4942. S2CID  252750395.
  59. ^ Kuhn-Schnyder, Emil (1974). "Die Triasfauna der Tessiner Kalkalpen" (PDF). Neujahrsblatt der Naturforschenden Gesellschaft in Zürich. 176: 1–119.
  60. ^ Rieppel, O. (1989). "Helveticosaurus zollingeri PEYER (Reptilia, Diapsida): skeletal paedomorphosis, functional anatomy and systematic affinities". Palaeontographica A. 208 (123–152).
  61. ^ Peyer, B. (1939). "Die Triasfauna der Tessiner Kalkalpen. XIV. Paranothosaurus amsleri nov. gen. nov. spec". Abhandlungen der schweizerischen Paläontologischen Gesellschaft. 62: 1–87.
  62. ^ Kuhn-Schnyder, E. (1966). "Der Schädel von Paranothosaurus amsleri Peyer aus dem Grenzbitumenhorizont der anisisch-ladinischen Stufe der Trias des Monte San Giorgio (Kt. Tessin, Schweiz)". Eclogae geologicae Helvetiae (in German). 59 (1): 517–540.
  63. ^ Rieppel, Olivier; Wild, Rupert (1996). "A revision of the genus Nothosaurus (Reptilia, Sauropterygia) from the Germanic Triassic, with comments on the status of Conchiosaurus clavatus". Fieldiana (Geology), New Series. 34: 1–82.
  64. ^ Renesto, Silvio (2010). "A NEW SPECIMEN OF NOTHOSAURUS FROM THE LATEST ANISIAN (MIDDLE TRIASSIC) BESANO FORMATION (GRENZBITUMENZONE) OF ITALY". RIVISTA ITALIANA DI PALEONTOLOGIA E STRATIGRAFIA. 116 (2): 145–160. doi: 10.13130/2039-4942/5946.
  65. ^ a b c Renesto, S.; Binelli, G.; Hagdorn, H. (2014). "A new pachypleurosaur from the Middle Triassic Besano Formation of Northern Italy". Neues Jahrbuch für Geologie und Paläontologie - Abhandlungen. 271 (2): 151. doi: 10.1127/0077-7749/2014/0382.
  66. ^ a b c Peyer, B. (1931). "Paraplacodus broilii nov. gen. nov. sp., ein neuer Placodontier aus der Tessiner Trias. Vorläufige Mitteilung". Centralblatt für Mineralogie, Geologie und Paläontologie B. 1931: 190–192.
  67. ^ Kuhn-Schnyder, E. (1942). "Über einen weiteren Fund von Paraplacodus broilii Peyer aus der Trias des Monte San Giorgio". Eclogae Geologicae Helvetiae. 35 (2): 174–183.
  68. ^ Rieppel, Olivier (2000). "Paraplacodus and the phylogeny of the Placodontia (Reptilia: Sauropterygia)". Zoological Journal of the Linnean Society. 130 (4): 635–659. doi: 10.1111/j.1096-3642.2000.tb02204.x.
  69. ^ Maisch, Michael W. (2020-05-15). "The evolution of the temporal region of placodonts (Diapsida: Placodontia) – a problematic issue of cranial osteology in fossil marine reptiles". Palaeodiversity. 13 (1): 57. doi: 10.18476/pale.v13.a6. ISSN  1867-6294. S2CID  218963106.
  70. ^ a b c d e Rieppel, O.; Greenwood, Peter Humphry (1989-01-04). "A new pachypleurosaur (Reptilia: Sauropterygia) from the Middle Triassic of Monte San Giorgio, Switzerland". Philosophical Transactions of the Royal Society of London. B, Biological Sciences. 323 (1212): 1–73. Bibcode: 1989RSPTB.323....1R. doi: 10.1098/rstb.1989.0001.
  71. ^ a b Kuhn-Schnyder, E. (1990). "Über Nothosauria (Sauropterygia, Reptilia)—ein Diskussionsbeitrag". Paläontologische Zeitschrift (in German). 64: 313–316.
  72. ^ a b Tschanz, K. (1989). "Lariosaurus buzzii n. sp. from the Middle Triassic of Monte San Giorgio (Switzerland), with comments on the classification of nothosaurs". Palaeontographica A. 208: 153–179.
  73. ^ Storrs, Glenn W. (1993). "The systematic position of Silvestrosaurus and a classification of Triassic sauropterygians (Neodiapsida)". Paläontologische Zeitschrift. 67 (1–2): 177–191. doi: 10.1007/BF02985877. ISSN  0031-0220.
  74. ^ Olivier Rieppel (1998). "The status of the sauropterygian reptile genera Ceresiosaurus, Lariosaurus, and Silvestrosaurus from the Middle Triassic of Europe". Fieldiana: Geology. New Series. 38: 1–46.
  75. ^ a b Müller, Johannes (2005). "The anatomy of Askeptosaurus italicus from the Middle Triassic of Monte San Giorgio and the interrelationships of thalattosaurs (Reptilia, Diapsida)". Canadian Journal of Earth Sciences. 42 (7): 1347–1367. Bibcode: 2005CaJES..42.1347M. doi: 10.1139/e05-030.
  76. ^ Kuhn-Schnyder, E. (1952). "Die Trisfauna der Tessiner Kalkalpen. XVII. Askeptosaurus italicus Nopcsa". Schweizerische Palaeontologische Abhandlungen. 69: 1–73.
  77. ^ Kuhn-Schnyder, E. (1971). "Über einen Schädel von Askeptosaurus italicus NOPCSA aus der mittleren Trias des Monte San Giorgio (Kt. Tessin, Schweiz)". Abhandlungen des hessischen Landesamtes für Bodenforschung zu Wiesbaden. 60: 89–98.
  78. ^ a b c Peyer, B. (1936). "Die Triasfauna der Tessiner Kalkalpen. X. Clarazia schinzi nov. gen. nov. spec". Abhandlungen der Schweizerischen Paläontologischen Gesellschaft. 57: 1–61.
  79. ^ a b Rieppel, O. (1987). "Clarazia and Hescheleria: a re-investigation of two problematical reptiles from the Middle Triassic of Monte San Giorgio (Switzerland)". Palaeontographica Abteilung A. A195 (4–6): 101–129.
  80. ^ a b c Peyer, B. (1936). "Die Triasfauna der Tessiner Kalkalpen. XI. Hescheleria rübeli nov. gen. nov. spec". Abhandlungen der Schweizerischen Paläontologischen Gesellschaft. 58: 1–48.
  81. ^ Rieppel, Olivier (1985). "A second actinistian from the Middle Triassic of Monte San Giorgio, Kanton Tessin, Switzerland". Eclogae Geologicae Helvetiae. 78: 707–713. doi: 10.5169/seals-165676.
  82. ^ a b c d e Ferrante, C.; Cavin, L. (2023). "Early Mesozoic burst of morphological disparity in the slow-evolving coelacanth fish lineage". Scientific Reports. 13 (1): 11356. Bibcode: 2023NatSR..1311356F. doi: 10.1038/s41598-023-37849-9. PMC  10345187. PMID  37443368.
  83. ^ a b Rieppel, O. (1980). "A new coelacanth from the Middle Triassic of Monte San Giorgio, Switzerland". Eclogae Geologicae Helvetiae. 73 (3): 921–939.
  84. ^ Brough, James (1939). The Triassic Fishes of Besano, Lombardy. London: British Museum of Natural History.
  85. ^ Bürgin, T. (1992). "Basal ray-finned fishes (Osteichthyes; Actinopterygii) from the Middle Triassic of Monte San Giorgio (Canton Tessin, Switzerland). Systematic palaeontology with notes on functional morphology and palaeoecology". Schweizerische Paläontologische Abhandlungen. 114: 1–164.
  86. ^ Bürgin, Toni (1996). "Diversity in the feeding apparatus of perleidid fishes (Actinopterygii) from the Middle Triassic of Monte San Giorgio". In Arratia, G.; Viohl, G. (eds.). Mesozoic Fishes—Systematics and Paleoecology. Munich: Verlag Dr. Friedrich Pfeil. pp. 555–565. ISBN  3923871902.
  87. ^ Romano, Carlo (2021). "A Hiatus Obscures the Early Evolution of Modern Lineages of Bony Fishes". Frontiers in Earth Science. 8. doi: 10.3389/feart.2020.618853. ISSN  2296-6463.
  88. ^ a b c d e f g h i j k l m n o p Mutter, Raoul J.; Herzog, Annette (2004-12-10). "A new genus of Triassic actinopterygian with an evaluation of deepened flank scales in fusiform fossil fishes". Journal of Vertebrate Paleontology. 24 (4): 794–801. doi: 10.1671/0272-4634(2004)024[0794:ANGOTA]2.0.CO;2. ISSN  0272-4634. S2CID  86099355.
  89. ^ Schwarz, W. (1970). "Die Triasfauna der Tessiner Kalkalpen XX. Birgeria stensiöi Aldinger". Schweizerische Paläontologische Abhandlungen. 89: 1–93.
  90. ^ Romano, C. & Brinkmann, W. (2009). "Reappraisal of the lower actinopterygian Birgeria stensioei ALDINGER, 1931 (Osteichthyes; Birgeriidae) from the Middle Triassic of Monte San Giorgio (Switzerland) and Besano (Italy)". Neues Jahrbuch für Geologie und Paläontologie - Abhandlungen. 252: 17–31. doi: 10.1127/0077-7749/2009/0252-0017.
  91. ^ Tintori, Andrea (1998-11-30). "Ctenognathichthys bellottii (De Alessandri, 1910): Nomenclatural Problems and Stratigraphical Importance of This Middle Triassic Actinopterygian Fish". Rivista Italiana di Paleontologia e Stratigrafia. 104 (3). doi: 10.13130/2039-4942/5342. ISSN  2039-4942.
  92. ^ Herzog, Annette (2003-04-01). "Eine Neubeschreibung der Gattung Eoeugnathus Brough, 1939 (Actinopterygii; Halecomorphi) aus der alpinen Mitteltrias Graubündens (Schweiz)". Paläontologische Zeitschrift (in German). 77 (1): 223–240. doi: 10.1007/BF03004570. S2CID  130755597.
  93. ^ López-Arbarello, Adriana; Bürgin, Toni; Furrer, Heinz; Stockar, Rudolf (2019-02-27). "Taxonomy and phylogeny of Eosemionotus Stolley, 1920 (Neopterygii: Ginglymodi) from the Middle Triassic of Europe". Palaeontologia Electronica. 22 (1): 1–64. doi: 10.26879/904. ISSN  1094-8074. S2CID  133627787.
  94. ^ a b c Bürgin, Toni (1990-12-01). "Reproduction in Middle Triassic actinopterygians; complex fin structures and evidence of viviparity in fossil fishes". Zoological Journal of the Linnean Society. 100 (4): 379–391. doi: 10.1111/j.1096-3642.1990.tb01866.x. ISSN  0024-4082.
  95. ^ a b c d e f g h Maxwell, Erin E.; Romano, Carlo; Wu, Feixiang; Furrer, Heinz (2015-03-24). "Two new species of Saurichthys (Actinopterygii: Saurichthyidae) from the Middle Triassic of Monte San Giorgio, Switzerland, with implications for character evolution in the genus". Zoological Journal of the Linnean Society. 173 (4): 887–912. doi: 10.1111/zoj.12224. ISSN  0024-4082.
  96. ^ Rieppel, O. (1992). "Die Triasfauna der Tessiner Kalkalpen. XXV. Die Gattung Saurichthys (Pisces, Actinopterygii) aus der mittleren Trias des Monte San Giorgio, Kanton Tessin". Schweizerische Paläontologische Abhandlungen. 108: 1–81.
  97. ^ Rieppel, O. (1992). "New species of the genus Saurichthys (Pisces: Actinopterygii) from the Middle Triassic of Monte San Giorgio (Switzerland), with comments on the phylogenetic interrelationships of the genus". Palaeontographica A. 221: 63–94.
  98. ^ Lombardo, Cristina; Rusconi, Marco; Tintori, Andrea (2008-07-31). "New Perleidiform from the Lower Ladinian (Middle Triassic) of the Northern Grigna (Northern Italy)". Rivista Italiana di Paleontologia e Stratigrafia. 114 (2). doi: 10.13130/2039-4942/5901. ISSN  2039-4942.
  99. ^ Kuhn-Schnyder, E. (1945). "Über Acrodus-Funde aus dem Grenzbitumenhorizont der anisischen Stufe der Trias des Monte San Giorgio (Kt. Tessin)". Eclogae geologicae Helvetiae. 38: 662–673.
  100. ^ a b Rieppel, O. (1981). "The hybodontiform sharks from the Middle Triassic of Mte. San Giorgio, Switzerland". Neues Jahrbuch für Geologie und Paläontologie, Abhandlungen. 161: 324–353.
  101. ^ a b c d e Rieppel, O. (1982). "A new genus of shark from the Middle Triassic of Monte San Giorgio, Switzerland" (PDF). Palaeontology. 25 (2): 399–412.
  102. ^ Maisey, John G. (2011). "The braincase of the Middle Triassic shark Acronemus tuberculatus (Bassani, 1886)". Palaeontology. 54 (2): 417–428. doi: 10.1111/j.1475-4983.2011.01035.x. ISSN  0031-0239.
  103. ^ Stumpf, Sebastian; López-Romero, Faviel A.; Kindlimann, René; Lacombat, Frederic; Pohl, Burkhard; Kriwet, Jürgen (2021-01-13). Cavin, Lionel (ed.). "A unique hybodontiform skeleton provides novel insights into Mesozoic chondrichthyan life". Papers in Palaeontology. 7 (3): 1479–1505. Bibcode: 2021PPal....7.1479S. doi: 10.1002/spp2.1350. ISSN  2056-2799.
  104. ^ a b c Rieber, H. (1965). "Zur Wirbellosen-Fauna der Grenzbitumenzone der mittleren Trias des Monte San Giorgio (Kt. Tessin, Schweiz)". Eclogae Geologicae Helvetiae (in German). 58: 1083–1092.
  105. ^ a b Rieber, Hans (1970). "Phragmoteuthis? ticinensis n. sp., ein Coleoidea-Rest aus der Grenzbitumenzone (Mittlere Trias) des Monte San Giorgio (Kt. Tessin, Schweiz)". Paläontologische Zeitschrift (in German). 44 (1): 32–40. Bibcode: 1970PalZ...44...32R. doi: 10.1007/BF02989793.
  106. ^ a b Rieber, H. (1973). "Die Triasfauna der Tessiner Kalkalpen: XXII. Cephalopoden aus der Grenzbitumenzone (Mittlere Trias) des Monte San Giorgio (Kanton Tessin, Schweiz)". Schweizerische Paläontologische Abhandlungen (in German). 93: 1–96.
  107. ^ a b c d e f g Rieber, H. (1973). "Ergebnisse paläontologisch-stratigraphischer Untersuchungen in der Grenzbitumenzone (Mittlere Trias) des Monte San Giorgio (Kanton Tessin, Schweiz)". Eclogae Geologicae Helvetiae (in German). 66 (3): 667–685.
  108. ^ Rieber, H. (1974). "Breviconoteuthis breviconus (Reis), ein Phragmoteuthide aus der mittleren Trias des Monte San Giorgio (Kanton Tessin, Schweiz)". Neues Jahrbuch für Geologie und Paläontologie, Monatshefte (in German). 7: 415–421.
  109. ^ Brack, P.; Rieber, H. (1986). "Stratigraphy and ammonoids of the lower Buchenstein Beds of the Brescian Prealps and Giudicarie and their significance for the Anisian/Ladinian Boundary". Eclogae Geologicae Helveticae. 79 (1): 181–225.
  110. ^ a b c d e Pieroni, Vittorio (2022-12-23). "Middle Triassic Nautilida from the Besano Formation of Monte San Giorgio, Switzerland". Swiss Journal of Palaeontology. 141 (1): 21. Bibcode: 2022SwJP..141...21P. doi: 10.1186/s13358-022-00263-1. ISSN  1664-2384.
  111. ^ a b c Pohle, Alexander; Klug, Christian (3 April 2024). "Orthoceratoid and coleoid cephalopods from the Middle Triassic of Switzerland with an updated taxonomic framework for Triassic Orthoceratoidea". Swiss Journal of Palaeontology. 143 (1): 14. doi: 10.1186/s13358-024-00307-8. ISSN  1664-2384. PMC  10991048.
  112. ^ a b c d e Rieber, Hans (1968). "Die Artengruppe der Daonella elongata Mojs. aus der Grenzbitumenzone der mittleren Trias des Monte San Giorgio (Kt. Tessin, Schweiz)". Paläontologische Zeitschrift (in German). 42 (1): 33–61. doi: 10.1007/BF02987127.
  113. ^ a b c d e f Rieber, H. (1968). "Daonellen aus der Grenzbitumenzone der mittleren Trias des Monte San Giorgio (Kanton Tessin, Schweiz)". Eclogae Geologicae Helvetiae (in German). 62 (2): 657–683.
  114. ^ Schatz, W. (2005). "Taxonomie, Paläoökologie und biostratigraphische Anwendung der Daonellen (Bivalvia, Mollusca) aus der Mitteltrias Europas". Schweizerische Paläontologische Abhandlungen (in German). 125: 1–179.
  115. ^ a b c d Pieroni, Vittorio; Furrer, Heinz (2020-02-12). "Middle Triassic gastropods from the Besano Formation of Monte San Giorgio, Switzerland". Swiss Journal of Palaeontology. 139 (1): 2. Bibcode: 2020SwJP..139....2P. doi: 10.1186/s13358-019-00201-8. ISSN  1664-2384. S2CID  211089125.
  116. ^ Rieber, Hans (1980). "Ein Conodontencluster aus der Grenzbitumenzone (Mittlere Trias) des Monte San Giorgio" (PDF). Ann. Naturhist. Mus. Wien. 83: 265–274.
  117. ^ Goudemand, Nicolas; Orchard, Michael J.; Urdy, Séverine; Bucher, Hugo; Tafforeau, Paul (2011-05-09). "Synchrotron-aided reconstruction of the conodont feeding apparatus and implications for the mouth of the first vertebrates". Proceedings of the National Academy of Sciences. 108 (21): 8720–8724. doi: 10.1073/pnas.1101754108. ISSN  0027-8424. PMC  3102352.
  118. ^ Etter, Walter (1994-04-01). "A new penaeid shrimp (Antrimpos mirigiolensis n. sp., Crustacea, Decapoda) from the Middle Triassic of the Monte San Giorgio (Ticino, Switzerland)". Neues Jahrbuch für Geologie und Paläontologie - Monatshefte. 1994 (4): 223–230. doi: 10.1127/njgpm/1994/1994/223.
  119. ^ Viaretti, Marco; Bindellini, Gabriele; Dal Sasso, Cristiano (2023-07-14). "A new Mesozoic scorpion from the Besano Formation (Middle Triassic, Monte San Giorgio UNESCO WHL), Italy". PalZ. 97 (3): 505–517. Bibcode: 2023PalZ...97..505V. doi: 10.1007/s12542-023-00659-5. hdl: 2434/1022910. ISSN  0031-0220. S2CID  259917687.