亚洲免费av电影一区二区三区,日韩爱爱视频,51精品视频一区二区三区,91视频爱爱,日韩欧美在线播放视频,中文字幕少妇AV,亚洲电影中文字幕,久久久久亚洲av成人网址,久久综合视频网站,国产在线不卡免费播放

        ?

        First description of scleractinian corals from the Santa Marta and Snow Hill Island (Gamma Member) formations, Upper Cretaceous, James Ross Island, Antarctica

        2020-12-18 07:20:12RobertoVIDEIRASANTOSSandroMarceloSCHEFFLERLuizaCorralMartinsdeOliveiraPONCIANOLuizCarlosWEINSCHTZRodrigoGiestaFIGUEIREDOTaissaRODRIGUESJulianaMansoSAYDouglasSantosRIFFAlexanderWilhelmArminKELLNER
        Advances in Polar Science 2020年3期

        Roberto VIDEIRA-SANTOS, Sandro Marcelo SCHEFFLER, Luiza Corral Martins de Oliveira PONCIANO, Luiz Carlos WEINSCHüTZ, Rodrigo Giesta FIGUEIREDO, Taissa RODRIGUES, Juliana Manso SAY?O, Douglas Santos RIFF & Alexander Wilhelm Armin KELLNER

        1 Laboratório de Paleoinvertebrados, Departamento de Geologia e Paleontologia, Museu Nacional, Universidade Federal do Rio de Janeiro, Quinta da Boa Vista, s/n, 20940-040, Rio de Janeiro, RJ, Brazil;

        2 Universidade Federal Rural do Rio de Janeiro, BR-465, Km 07, s/n, 23890-000, Seropédica, RJ, Brazil;

        3 Laboratório de Tafonomia e Paleoecologia Aplicadas – LABTAPHO, Departamento de Ciências Naturais – DCN, Universidade Federal do Estado do Rio de Janeiro – UNIRIO, Av. Pasteur, 458, 22290-250, Rio de Janeiro, RJ, Brasil;

        4 Centro Paleontológico de Mafra – CENPALEO, Universidade do Contestado, Av. Pres. Nereu Ramos,1071, 89300-000, Mafra, SC, Brazil;

        5 Departamento de Biologia, Universidade Federal do Espírito Santo – UFES, Alto Universitário s/n, Guararema, Alegre, ES, Brazil;

        6 Laboratório de Paleontologia, Departamento de Ciências Biológicas, Centro de Ciências Humanas e Naturais, Universidade Federal do Espírito Santo – UFES, Avenida Fernando Ferrari, 514, Goiabeiras, 29075-910, Vitória, ES, Brazil;

        7 Laboratório de Paleobiologia e Microestruturas, Núcleo de Biologia, Centro Acadêmico de Vitória, Universidade Federal de Pernambuco – UFPE, Rua do Alto do Reservatório, s/n, 52050-480, Vitória de Santo Ant?o, PE, Brazil;

        8 Laboratory of Systematics and Taphonomy of Fossil Vertebrates, Departamento de Geologia e Paleontologia, Museu Nacional/Universidade Federal do Rio de Janeiro, Quinta da Boa Vista s/n, S?o Cristóv?o, 20940-040 Rio de Janeiro, RJ, Brazil;

        9 Laboratório de Paleontologia, Instituto de Biologia, Universidade Federal de Uberlandia, campus Umuarama, 38400-902, Uberlandia, MG, Brazil

        Abstract Antarctic corals are known from the Upper Cretaceous Santa Marta Formation (Santonian–early Campanian) and Gamma Member (late Campanian) of Snow Hill Island Formation (late Campanian–early Maastrichtian) but they have not so far been taxonomically described. We describe three corals taxa based on 29 specimens collected in 2007 and 2016 on James Ross Island (northeast of the Antarctic Peninsula). They represent the first formal record of scleractinian corals from the Santa Marta Formation, identified as Caryophylliidae indet. and Gamma Member of Snow Hill Island Formation, identified as ?Astreopora sp. and Fungiacyathus deltoidophorus. The family Caryophylliidae and the genus Astreopora were not restricted to the Weddellian Biogeographic Province but the species Fungiacyathus deltoidophorus was endemic to Antarctica during the Cretaceous. The genus Fungiacyathus and the family Caryophylliidae thrive in Antarctica until the present day. Fungiacyathus occurred in shallower environments during the late Campanian than today. No specimens related to Astreopora have yet to be found in Antarctica after the late Campanian. This can be explained by the capacity of Fungiacyathus and Caryophyllidae to endure cold waters, since they are asymbiotic corals. The symbiotic ?Astreopora sp., due to its sensitivity to low temperatures, became extinct in this continent as soon as the Antarctic waters began to cool, around the Campanian/Maastrichtian. The presence of ?Astreopora sp. in Gamma Member of Snow Hill Island Formation may represents the first occurrence of this genus in Antarctica and the oldest record of this genus in the Southern Hemisphere.

        Keywords scleractinia, taxonomy, Campanian, James Ross Sub-Basin, Antarctica

        1 Introduction

        Scleractinians are solitary or colonial corals bearing a skeleton of aragonite, including all true post-Paleozoic fossil corals. These corals can be divided into two ecological groups: the symbiotic, characterized by the presence of vast numbers of unicellular symbiotic, dinoflagellates or zooxanthellae in their endodermal tissues, and the asymbiotic, which lack of zooxanthellae (Wells, 1956).

        Symbiotic corals are restricted to shallow tropical waters, generally with depths less than 20 m and temperatures between 25 ℃ and 29 ℃, due to the photosynthetic needs of the zooxanthellae algae. Some recent taxa can be found in depths up to 90 m, supporting temperatures as cold as 16 ℃ (Fernandes, 2011). Even though asymbiotic corals can occur associated with coral reefs, they are not subjected to the same environmental restrictions as the symbiotic, surviving in depths up to 6000 m and temperatures ranging between 1.1 and 28℃. ℃Their geographic distribution includes all the seas and oceans of normal salinity (Fernandes, 2011).

        The Antarctic sedimentary rocks, from Mesozoic and Cenozoic, are quite fossiliferous (e.g., Scasso et al., 1991; Luther, 1999; Olivero, 2012a). At least 16 species of scleractinian corals have been identified in the Late Cretaceous (Lopez de Bertodano Formation) and Paleocene (Sobral Formation) strata from the Seymour and Snow Hill islands (e.g.del Valle et al., 1982; Filkorn, 1994). So far, scleractinian corals in the Santa Marta Formation (Santonian–early Campanian) and Gamma Member (late Campanian) of Snow Hill Island Formation (late Campanian–early Maastrichtian) at James Ross Island have been recorded (e.g.Scasso et al., 1991; Olivero, 2012a) but were not studied in detail. Darrel and Taylor (1993) illustrated some coral specimens from Santa Marta Formation referring them toDeltocyathus?complanatusbut did not provide any further taxonomic description.

        Here we provide the first taxonomic description of scleractinian corals from the Santa Marta Formation (Alpha Member) and Gamma Member of Snow Hill Island Formation, including the first record of asymbioticFungiacyathus deltoidophorusand Caryophylliidae indet., and the symbiotic symbiotic ?Astreoporasp.

        2 Geological setting

        The James Ross Sub-Basin, part of the Larsen Basin, is located in the northeast of the Antarctic Peninsula and contains a significant Meso-Cenozoic sedimentary succession (Figure 1) related to the Gondwanan break-up and subsequent development of a back-arc basin (Hathway, 2000).

        The James Ross Archipelago (James Ross, Snow Hill, Humps, Seymour, Vega, Cockburn, Persson and Lockyer islands) presents the best exposure of volcano-sedimentary rocks of its homonymous sub-basin. Two thick sedimentary successions are recognized on James Ross Island: Gustav Group (Aptian–Coniacian) and Marambio Group (Santonian– Danian) (Olivero, 2012a). The Gustav Group consists of the Pedersen, Lagrelius Point, Kotick Point, Whisky Bay and Hidden Lake formations (Riding and Crame, 2002), which represent a deep marine depositional environment with submarine fan and slope deposits. This group is not very fossiliferous, being composed mainly of conglomerates and sandstones (Ineson, 1989; Medina et al., 1992; Whitham et al., 2006).

        The Marambio Group is rich in fossils, consisting of siltstones, argillites and fine-grained sandstones, interpreted as being deposited in a shallow inner to outer continental shelf environment with the presence of a prograding delta (Crame et al., 1991; Pirrie et al., 1997; Olivero, 2012a). Although there are several proposed subdivisions for the Marambio Group (e.g., Pirrie et al., 1997; Olivero and Medina, 2000; Olivero, 2012a), in this contribution we follow the stratigraphy of Olivero (2012a), which divides this group into: Santa Marta Formation, Rabot Formation, Snow Hill Island Formation, Hamilton Point Member, Karlsen Cliffs Member, Sanctuary Cliff Member, Haslum Crags Sandstone, Lopéz de Bertodano Formation and Sobral Formation (Figure 2).

        2.1 Santa Marta and Snow Hill Island (Gamma Member) formations

        Figure 1 a, Sedimentary deposits of the Cretaceous/Paleogene outcrops of the James Ross Sub-Basin. In detail, the region where the PALEOANTAR I and II expeditions were concentrated. b, Simplified geological map of the Ulu Peninsula, showing outcrops of the Santa Marta (Alpha and Beta members) and Snow Hill Island (Gamma Member) formations, as well as the collection areas of the studied fossils. A—represents point AK 042 (Caryophylliidae indet.); B—represents points 22, 24, 26, AK 281 and AK 292 (Fungiacyathus deltoidophorus and ?Astreopora sp.) (adapted from Castro and Carvalho, 2015; Reguero et al., 2016).

        Figure 2 Several proposals of subdivisions of the Marambio Group, highlighting the proposal of Olivero (2012a). Adapted from Milanese et al. (2017).

        The Santa Marta Formation (Santonian–early Campanian) is composed of an intercalation of sandstones, siltstones, and argillites with volcanic tuffs and rare coquinas (Olivero, 2012a). It was originally defined to the northwest of James Ross Island and subdivided into Alpha, Beta and Gamma members by Olivero et al. (1986), however due to great lithostratigraphic similarity between the Alpha and Beta members, Crame et al.(1991) considered them to be a single unit and named it Lachman Crags Member (Santonian–middle Campanian), while the Gamma Member (late Campanian) was renamed Herbert Sound Member, this member represents a basin wide shallowing event (Crame et al., 1991).

        Olivero (2012a) pointed out that the Gamma Member is included into the Snow Hill Island Formation instead of the Santa Marta Formation, as originally defined. The Gamma Member crops out at Santa Marta Cove and Dreadnought Point and is dominated by sandstones beds with scarceNeograhamites primusammonites, common gastropods, bivalves and coquinas (Guerra et al., 2015).

        In the southeast of James Ross Island (Rabot Point and Hamilton Point), there are two another stratigraphic unit: Rabot Formation (Lirio et al., 1989) and Hamilton Point Member (Pirrie et al., 1997). The Rabot Formation is laterally correlated to the Alpha and Beta members and the lower portion of the Gamma Member. The Hamilton Point Member is the lateral equivalent of the intermediate to upper portion of the Gamma Member (Pirrie et al., 1997).

        The Campanian fauna from Santa Marta Formation and Gamma Member are not yet completely known (Crame, 2019), but it is often referred as part of the Weddellian Biogeographic Province. This province included the seas of New Zealand, South America (Patagonia) and Antarctica from the Late Cretaceous to late Eocene (e.g., Zinsmeister, 1979, 1982; Olivero and Medina, 2000; Novas et al., 2015). More recently, Brazilian researchers have made significant progress in the understanding of the vertebrate paleontology (e.g., Kellner et al., 2011, 2018; Say?o et al., 2017), nannofossils (Guerra et al., 2015) and dinoflagellate cyst assemblage (e.g., Castro and Carvalho, 2015) of this stratigraphic unit.

        2.2 Outcrop descriptions

        The collection localities for this paper come from two different units. At Point AK 042, the lithology consists of fine to very fine sandstones, associated with turbiditic levels and rare conglomeratic levels deposited in a shelf environment below the level of storm waves belonging to the upper portion of the Alpha Member of Santa Marta Formation, N sequencesensuOlivero (2012a).

        The lithology of Point AK 042 is the same as the Lithofacies BsensuScasso et al. (1991). This lithofacies was deposited in the distal part of a submarine fan developed on the mid-outer shelf (Pirrie, 1989; Scasso et al., 1991; Olivero, 2012a). According to Scasso et al. (1991) the Lithofacies B is composed of the “Cerithium”–RotulariaandEryphyla–“Aporrhais” biofacies that indicate autochthonous to parautochthonous associations in a soft substrate and possibly in the photic zone. Due to the stratigraphic position of the Point AK 042 and its lithological description, it is positioned in the “Cerithium”–Rotulariabiofacies, facies Group IIsensuScasso et al. (1991). The ammonites’ assemblages that occur in this lithofacies indicate an early Campanian age (Olivero, 1992, 2012a).

        Points 22, 24, 26 (Santa Marta Cove), AK 281 and AK 292 are located close together, and are represented by fine to medium bioturbed sandstones, with cross- stratification, occurrence of fossiliferous concretions and conglomeratic levels, deposited in a shelf environment above the level of storm waves, belonging to the lower portion of Gamma Member of Snow Hill Island Formation, NG sequencesensuOlivero (2012a).

        The lithology of points 22, 24, 26, AK 281 and AK 292 is similar to Lithofacies EsensuScasso et al. (1991) which presents autochthonous to parautochthonous assemblages (TaiomaandCucullaea–“Neilo” biofaciessensuScasso et al., 1991). Due to the relative stratigraphic position of these points, they are probably positioned inCucullaea–Neilobiofacies, facies Group VIsensuScasso et al. (1991). The association of ammonites in these lithofacies suggests a late Campanian age (Olivero, 2012a).

        The occurrence of rockin situwas sparse, at all the outcrops cited in this paper. Because of it we did not have security for the elaboration of a sedimentologic profile, but we were able to position them in the Santa Marta (Alpha Member) and Snow Hill Island (Gamma Member) formations. For a better visualization of the geological context, the specimens were tentatively plotted, based on stratigraphic position and lithology, in a general sedimentologic profile of the Santa Marta and Snow Hill Island (Gamma Member) formations (Olivero, 2012b) (Figure 3).

        Figure 3 General sedimentologic profile of the Santa Marta (Alpha and Beta members) and Snow Hill Island (Gamma Member) formations. Adapted from Olivero (2012b).

        3 Materials and methods

        The analyzed fossils are deposited in thePaleoinvertebratescollection, housed at Departamento de Geologia e Paleontologia, Museu Nacional, Universidade Federal do Rio de Janeiro(MN-I)and at the scientific collection of Phanerozoic fossils (CFF) of the Universidade Federal do Estado do Rio de Janeiro(UNIRIO). The specimens housed at the Paleoinvertebrates collection that were inside the building of Museu Nacional suffered a tragical fire on September 2, 2018 (e.g., Kellner, 2019; Scheffler, 2019). All specimens of ?Astreoporasp. and Caryophylliidae indet. were recovered, but unfortunately no specimen ofFugiacyathusdeltoidophoruswas rescued so far.

        The 29 studied specimens were collected in the austral summers of 2007 and 2016, during the expeditions of the PALEONTAR Project (PROANTAR—Programa Antártico Brasileiro), organized by the Museu Nacional/ UFRJand a team of interinstitutional Brazilian researchers to the James Ross Island. The taxonomic identification was based on the “Treatise on Invertebrate Paleontology” (Wells, 1956), the “Fossil Scleractinian Coral from James Ross Basin, Antarctica” (Filkorn, 1994) and the “An illustrated key to the genera and subgenera of the recent azooxanthellate Scleractinia (Cnidaria, Anthozoa), with an attached glossary” (Cairns and Kitahara, 2012). We used for measurements a digital caliper (0.02 mm accuracy).

        4 Systematic paleontology

        Order Scleractinia (Bourne, 1900)

        Suborder Caryophylliina (Vaughan and Wells, 1943)

        Superfamily Caryophylliicae (Gray, 1847)

        Family Caryophylliidae (Gray, 1847)

        Caryophylliidae indet.(Figures 4a, 4b)

        Material:Two specimens (MN 8656-Ia and MN 8656-Ib).

        Provenance:Upper portion of Alpha Member (Santa Marta Formation), early Campanian, unnamed locality, field number AK 042 (63o49′40.4″S, 57o53′20.5″W).

        Description:Solitary corals with length varying from 13 to 15 mm, mediumcorallum(between 7.0 and 9.0 mm) encircled by thick layers of tectura, about 35 septa preserved, laminarseptumwithout dentation. The shape of the calice is from turbid to subcylindrical and the wall is septothecal.

        Remarks:The columella, is poorly preserved which makes it difficult to accurately differentiate the MN 8656-Ia and MN 8656-Ib specimens from the other genera of solitary corals that belongs to the family Caryophylliidae, such asParacyathus,Cyathoceras,Oxysmiliaand

        Lophosmilia,reason why we decided to identify the specimens analyzed here just to family level. The general morphology, mainly the external shape, of the specimens of Caryophylliidae here described, is very similar toCaryophylliasp. from Seymour Island, Eocene from La Meseta Formation (Stolarski, 1996).

        Occurrence for the family Caryophylliidae:It appeared in the Permian and has had a cosmopolitan distribution ever since (e.g. Howse, 1848; Forbes, 1845; Wells, 1933; Stephenson, 1941; Sohl and Koch, 1984; Eliasova, 1991; Stolarski, 1996; Leloux, 1999; L?sser and Liao, 2001; Helm et al., 2003; Turnsek et al., 2003; Jell et al., 2011).

        Observation:The family has a cosmopolitan distribution during the Cenozoic. It is a living family (e.g., Wells, 1956; Cairns et al., 2005).

        Figure 4 Scleractinian corals from Santa Marta (Alpha Member) and Snow Hill Island (Gamma Member) formations. Caryophylliidae indet. (a–b): a, lateral view (MN 8656-Ia); b, calicular view (MN 8656-Ia). Fungiacyathus deltoidophorus (c–e): c, base view (MN 9978-Ia); d, calicular view (CFF 0308b); e, base view (CFF 308a). ?Astreopora sp. (f–h): f, general view (MN 9984-I); g, general view (MN 9985-I); h, general view (corallite) (MN 9985-I).

        Suborder Fungiina (Verrill, 1865)

        Superfamily Fungiicae (Dana, 1846)

        Family Fungiidae (Dana, 1846)

        GenusFungiacyathus(Sars, 1872)

        SubgenusFungiacyathus(Moseley, 1881)

        Type species:Fungiacyathus fragilis(Sars, 1872)

        Fungiacyathus deltoidophorus(Felix, 1909)

        (Figure 4c, 4d, 4e)

        Material:19 specimens (MN 9978-Ia, MN 9978-Ib, MN 10022-I, MN 10202-I, MN 10203-I, MN 10207-I, MN 10229-I, MN 10233-I, MN 10236-I, MN 10250-I, MN 10251-I, MN 10269-I, MN 10270-I, MN 10292-I, MN 10443-I, CFF 308 a, b, c, CFF 210). All the Museu Nacional specimens not recovered so far and we have only their photos.

        Provenance:Lower portion of Gamma Member (Snow Hill Island Formation), late Campanian, unnamed locality,field number point 24 (63o56′46.6″S, 57o51′13.5″W).

        Description:Solitary corals, copulate, free, withcorallumranging from 7 to 14 mm in diameter, discoidal; base of corallum flat to slightly convex, costate; presence ofsynapticulae; laminar septa thin; costae correspond to septa equal in size and gradually increase in height and width toward calicular margin; small, elliptical, trabecular and feebly developed columella. Corallum with four cycles of septa (48 septa), all unperforated.

        Remarks:Differs fromDeltocyathus, a Caryophyllina coral superficially close toFungiacyathus, because the columella is papillose inDeltocyathusbut trabecular inFungiacyathus. Felix (1909), originally, based on the corallites’ diameters (d) and septa number (n) distinguished three different species:Fungiacyathus antarcticus(Felix, 1909) (d= up to 26 mm andn= 48 to 96),Fungiacyathus deltoidophorus(Felix, 1909) (d= 4 to 14 mm andn= 48) andFungiacyathus larseni(Felix, 1909) (d= up to 14 mm andn= 48). Filkorn (1994) noticed the great overlap in the dimensions of the corallites ofF. deltoidophorusandF. larseni. In addition to the dimensions of the skeletal elements, Felix (1909) also included features as the development of the central region of the columella (flat or convex), the length of the costaeand the size difference of the fine granulations on the aboral region. However, Baron-Szabo (2008) interpreted all these characteristics as environmentally induced, and, therefore, intraspecific variations. In addition,F. antarcticusseems to correspond to the later ontogenetic stage ofF. larseniandF. deltoidophorus. For this reason, in a similar hypothesis as the one proposed by Baron-Szabo (2008), these three species are here considered synonymous.

        Occurrence ofFungiacyathus deltoidophorus:Late Campanian–Maastrichtian, Antarctica (Filkorn, 1994); ?Paleocene, Egypt (Baron-Szabo, 2008) and ?Eocene, Barbados (Baron-Szabo, 2008).

        Suborder Astrocoeniina (Vaughan and Wells, 1943)

        Family Acroporidae (Verrill, 1902)

        GenusAstreopora(Blainville, 1830)

        Type species:Astrea myriophtalma(Lamarck, 1801); subsequent designation (Milner-Edwards and Haime, 1850)

        ?Astreoporasp.(Figure 4f, 4g, 4h)

        Material:Eight specimens (MN 9984-I, MN 9985-I, MN 10005-I, MN 10006-I, CFF 189, CFF 188, CFF 187, CFF 186).

        Provenance:Lower portion of Gamma Member (Snow Hill Island Formation), late Campanian, field number point 22 (63o56′15.4″S; 57o50′48.1″W); Santa Marta Cove, field number point 26 (63o56′44.6″S; 57o51′12.2″W); unnamed locality A, field number AK 292 (63o56′15.4″S; 57o50′48.1″W) and unnamed locality B, field number AK 281 (63o56′49.4″S; 57o49′42.5″W).

        Description:Colonial corals with a spinose surface, corallites embedded in a reticular coenosteum, massive, plocoid, extratentacular budding, globular corallite with small diameter (maximum 1.0 mm), wall of solid corallites, poorly developed thin septa, dissepiments tabulate, no (?) columella nor axial corallites.

        Remarks:The specimens analyzed here has a morphology very similar to the genusAstreopora, however due to the poor preservation of them, we decide to leave them in open nomenclature. ?Astreoporasp. differs ofAcroporaby not having axial of leading corallite. ?Astreoporasp. differs ofDendracisby having massive shape. ?Astreoporasp. differs ofCyphastreaby having poorly developed septa and not developing septocostae. The doubtful Chilean record of theAstreoporanot have extratentacular budding, which is typical of family Acroporidae (Prinz, 1991). Therefore, the Chilean specimens are possibly not reallyAstreopora. ?Astreoporasp. differs from the Paleocene–OligoceneAstreopora auvertiaca(Michelin, 1844), because the corallites are sparser among themselves (Baron-Szabo, 2006). ?Astreoporasp. differs from the Senonian–EoceneAstreopora hexaphylla(Felix, 1906) because the former has a massive shape, while the second has ramose or encrusting shape (Baron-Szabo, 2006). ?Astreoporasp. is very similar to Maastrichtian- EoceneAstreopora esperanzae(Frost and Langenheim, 1974) but differs in having less developed septa and smaller corallite (maximum 1 mm in ?Astreoporasp., maximum 1.8 mm inA. esperanzae) (Baron-Szabo, 2006).

        Occurrence for the genusAstreopora:?Hauterivian, Chile (Prinz, 1991); ?Albian, United States of America (Wells, 1932); Senonian, Ukraine (Felix, 1906) and Maastrichtian, Jamaica (Baron-Szabo, 2006).

        Observation:The genus has a cosmopolitan distribution in both Pacific and Indian oceans during the Cenozoic. It is a living genus (e.g. Lamberts, 1982).

        5 Final considerations

        The presence of scleractinian corals in the Santa Marta and Snow Hill Island (Gamma Member) formations indicate, at least for coral occurrence levels, that the salinity of the waters was normal and the sedimentation rates were low in the region during few moments of the Campanian, since this group would hardly survive in conditions other than those mentioned (Wells, 1956; Fernandes, 2011).

        This becomes clear when we observe that corals occur in the Facies Group II and VIsensuScasso et al. (1991). Facies Group II represents a volcaniclastic submarine fan environment with some direct pyroclastic input. Presents extensive evidence of sedimentation by gravity flow processes. The relatively fine-grained turbidites of Facies Group II represent the distal parts of a submarine fan, alternating periods of relatively low sedimentation (Scasso et al., 1991). Scasso et al. (1991) argued that these submarine fans were settled in shallower sea, developed on the shelf, and probably in photic zone; a similar environment is proposed by Pirrie (1989) (Facies Association 1) and Olivero (2012a) (lower portion of Ammonite Assemblage 3). For this reason, the fossils found in this association, despite being in submarine fans, and being shallower waters inhabitants, have no significant transport, as demonstrated by Scasso et al. (1991). The delicate corallites without abrasion or fragmentation of Caryophylliidae indet. described here also corroborates this stament.

        The association of Facies Group VIsensuScasso et al. (1991), was deposited in an inner shelf environment, under normal salinity and oxygenation conditions. The similar environment is proposed by Pirrie (1989, Facies Association 2) and Olivero (2012a, Assemblage 8-1). The Ichnofossils Assemblage IVsensuScasso et al. (1991) is characterized by a deposition between the base level of the fair-weather waves until the base level of the storm waves. The fossils of Facies Group VI are basically parautochthonous, with little transport, which is evidenced by the low fragmentation, which can also be seen in corals. Therefore,Fungiacyathus deltoidophorusand ?Astreoporasp. lived in this inner shelf environment.

        The data above demonstrate that, as previously discussed, the coral specimens here analyzed corresponds to an autochthonous to parautochthonous assemblages. The specimens of Caryophylliidae indet. were collected in a mid-outer shelf environment, below the level of storm waves,while the specimens ofFungiacyathus deltoidophorusand ?Astreoporasp. were collected in an inner shelf environment, above the level of storm waves.

        The genusFungiacyathusand the family Caryophylliidae indet. thrive in Antarctica until the present day, but in deep waters (Cairns, 1990). Therefore, the genusFungiacyathusoccurred in shallower environments during the late Campanian period than today, as seen previously. Currently, this genus occurs in deeper zones in different parts of the world, between 99 and 6.328 m deep, the deepest for any known scleractinian coral (Cairns, 1990).

        The genusAstreoporawas not restricted to the Weddellian Biogeographic Province, occurring in other parts of the world during the Late Cretaceous.

        Fungiacyathus deltoidophoruswas endemic to Antarctica during the Late Cretaceous, ranging between Campanian to Maastrichtian ages.The oldest occurrences ofFungiacyathusare known from Antarctica (Snow Hill Island and Lopez de Bertodano formations), so it is possible that this genus appeared for the first time in this continent and later spread to lower latitudes (Yabe and Eguchi, 1942; Keller, 1976; Filkorn, 1994; Jell et al., 2011).

        No specimens related toAstreoporahave yet to be found in Antarctica after the late Campanian. This can be explained by the ability ofFungiacyathusand Caryophylliidaeto endure colder temperatures, since they are asymbiotic corals. The symbiotic ?Astreoporasp.,due to its sensitivity to low temperatures, became extinct in this continent as soon as the Antarctic waters began to cool, between the late Campanian and the early Maastrichtian (Pirrie and Marshall, 1990; Crame and Luther, 1997; Dingle and Lavelle, 1998; Francis and Poole, 2002; Olivero, 2012a). Currently, all living corals in Antarctica are asymbiotic. The low temperatures and low light levels, characteristic of deep waters, are very unfavorable to sustain photosynthetic algae (Cairns, 1990; Waller and Feehan, 2013).

        Finally, the presence of ?Astreoporasp. in the base of Snow Hill Island Formation (Gamma Member) may represents the first occurrence of this genus in Antarctica and the oldest record of this genus in the Southern Hemisphere.

        AcknowledgementsThe team of the PALEOANTAR Project wants to thank the NApOc Ary Rongel military group and the pilots of the HU-1 helicopter squadron for the logistical support that allowed us to arrive on James Ross Island (Antarctica). Mr. Jo?o Marcelo Pais (UNIRIO) photographed some of the specimens analyzed in this paper. This study was supported byPrograma Antártico BrasileiroPROANTAR (CNPq #557347/2005-0; #407670/2013-0 and #442677/2018-9 to AWAK). We would also like to thank the Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq #370345/2017-7 to RVS; CNPq 312360/2018-5 to TR; CNPq #311715/2017-6 to JMS and CNPq #420687/2016-5; #313461/2018-0 to AWAK) and Funda??o Carlos Chagas Filho de Amparo à Pesquisa do Estado do Rio de Janeiro (FAPERJ # E-26/202.905/2018 to AWAK; FAPERJ E-26/200.110/2019 to SMS) for the funding of this research. Finally, we would like to thank the reviewers (anonymous and Dr. Cecilia Amenabar) for their valuable suggestions and comments.

        References

        Andersson J G. 1906. On the geology of Graham Land. Bull Geol Inst Uppsala, 7: 19-71.

        Baron-Szabo R C. 2006. Corals of the K/T-boundary: scleractinian corals of the suborders astrocoeniina, faviina, rhipidogyrina and amphiastraeina. J Syst Palaeontol, 4(1): 1-108, doi:10.1017/s147720 1905001689.

        Baron-Szabo R C. 2008. Corals of the K/T-boundary: scleractinian corals of the suborders dendrophylliina, caryophylliina, fungiina, microsolenina, and stylinina. Zootaxa, 1952(1): 1-244, doi:10.11646/ zootaxa.1952.1.1.

        Bibby J S. 1966. The stratigraphy of part of north-east Graham Land and the James Ross Island group. London: British Antarctic Survey, 1-37.

        Blainville H M. 1830. Zoophytes//Levraulte F G. Dictionnaire des sciences naturelles, dans lequel on traitre méthodiquement des differéns êtres de la nature, considérés soit en eux-mêmes, d’après l’état actuel de nos connoissances, soit relativement a l’utlité qu’en peuvent retirer la médicine, l’agriculture, le commerce et les arts. Paris: Le Normat, 1-456.

        Bourne G C. 1900. The Anthozoa//Lankester E R. A treatise on zoology. Part II. The porifera and coelenterata. London: Adam & Charles Black, 1-84.

        Cairns S D. 1990. Antarctic Scleractinia//Wagele J W, Sieg J. Synopses of the Antarctic Benthos, v.1, Koenigstein: Koeltz Scientific Books, 5-76.

        Cairns S D, H?ussermann V, F?rsterra G. 2005. A review of the Scleractinia (Cnidaria: Anthozoa) of Chile, with the description of two new species. Zootaxa, 1018(1): 15-46, doi:10.11646/zootaxa.1018.1.2.

        Cairns S D, Kitahara M V. 2012. An illustrated key to the genera and subgenera of the Recent azooxanthellate Scleractinia (Cnidaria, Anthozoa), with an attached glossary. ZooKeys, 227: 1-47, doi:10.3897/zookeys.227.3612.

        Castro S P, Carvalho M A. 2015. Santonian dinocyst assemblages of the santa marta formation, Antarctic peninsula: inferences for paleoenvironments and paleoecology. An Acad Bras Ciênc, 87(3): 1583-1597, doi:10.1590/0001-3765201520140651.

        Crame J A. 2019. Paleobiological significance of the James Ross Basin. Adv Polar Sci, 30(3): 186-198, doi: 10.13679/j.advps.2018.0047.

        Crame J A, Luther A. 1997. The last inoceramid bivalves in Antarctica. Cretaceous Res, 18(2): 179-195, doi:10.1006/cres.1996.0055.

        Crame J A, Pirrie D, Riding J B, et al. 1991. Campanian–Maastrichtian (Cretaceous) stratigraphy of the James Ross Island area, Antarctica. J Geol Soc, 148(6): 1125-1140, doi:10.1144/gsjgs.148.6.1125.

        Dana J D. 1846. United States Exploring Expedition during the years 1838–1842 under the command of Charles Wilkes, U.S.N. Zoophytes, v.7, Philadelphia: Lea and Blanchard.

        Darrel J G, Taylor P D. 1993. Macrosymbiosis in corals: a review of fossil and potentially fossilizable examples. Cour Forsh Inst Senckenberg, 164: 185-198.

        del Valle R A, Fourcade N H, Medina F A. 1982. The stratigraphy of Cape Lamb and the Naze, Vega and James Ross Islands, Antarctica. Antarct Geosci: 275-280.

        Dingle R, Lavelle M. 1998. Late Cretaceous–Cenozoic climatic variations of the northern Antarctic Peninsula: new geochemical evidence and review. Palaeogeogr Palaeoclimatol Palaeoecol, 141(3-4): 215-232, doi:10.1016/s0031-0182(98)00056-x.

        Eliasova H. 1991. Quelques Scleractiniaires nouveaux de la Slovaquie (Cretace et Paleogene, Tchecoslovaquie). Zapadne Karpaty. Seria Paleontologia, 15: 49-55.

        Felix J. 1906. über eine Korallenfauna aus der Kreideformation Ost-Galiziens. Zeitschrift der Deutschen Geologischen Gesellschaft Band, 58: 38-52.

        Felix J. 1909. Uber die fossilen Korallen der Snow Hill-Insel und der Seymour-Insel. Wissenshaftliche Ergebnisse der Schwedischen Südpolar-Expedition 1901-1903, Lithogr Institut d Generalstabs, 3(5): 1-15.

        Fernandes A C S. 2011. Cnidários//Carvalho I S. Paleontologia, 3., v. 2. Rio de Janeiro: Interciência, 315-331.

        Filkorn H F. 1994. Fossil scleractinian corals from James Ross basin, Antarctica. Antarctic Research Series, v. 65, Washington, D.C.: AGU.

        Forbes E. 1845. V.—Report on the fossil invertebrata from southern India, collected by Mr. Kaye and Mr. Cunliffe. Transactions of the Geological Society of London, S2-7(1): 97-174, doi:10.1144/ transgslb.7.97.

        Francis J E, Poole I. 2002. Cretaceous and early Tertiary climates of Antarctica: evidence from fossil wood. Palaeogeogr Palaeoclimatol Palaeoecol, 182(1-2): 47-64, doi:10.1016/s0031-0182(01)00452-7.

        Frost S H, Langenheim R L. 1974. Cenozoic Reef Biofacies: Tertiary Larger Foraminifera and Scleractinian Corals from Chiaoas, Mexico. Northern Illinois Press: Dekalb, 388.

        Gray J E. 1847. A list of the genera of Recent Mollusca, their synonyms and types, London: Proc Zool Soc Lond, 15: 129-219.

        Guerra R M, Concheyro A, Lees J, et al. 2015. Calcareous nannofossils from the Santa Marta Formation (Upper Cretaceous), northern James Ross Island, Antarctic Peninsula. Cretaceous Res, 56: 550-562, doi:10.1016/j.cretres.2015.06.009.

        Hathway B. 2000. Continental rift to back-arc basin: Jurassic–Cretaceous stratigraphical and structural evolution of the Larsen Basin, Antarctic Peninsula. J Geol Soc, 157(2): 417-432, doi:10.1144/jgs.157.2.417.

        Helm C, Reuter M, Schülke I. 2003. Die Korallenfauna des Korallenooliths (Oxfordium, Oberjura, NW-Deutschland): zusammensetzung, stratigraphie und regionale verbreitung. Pal?ontol Z, 77(1): 77-94, doi:10.1007/bf 03004561.

        Howse R. 1848. A catalogue of the fossils of the Permian system of the counties of Northumberland and Durham. Transactions of the Tyneside Naturalists’ Field Club, 1: 219-264.

        Ineson J R. 1989. Coarse-grained submarine fan and slope apron deposits in a Cretaceous back-arc basin, Antarctica. Sedimentology, 36(5): 793-819, doi:10.1111/j.1365-3091.1989.tb01747.x.

        Jell J S, Cook A G, Jell P A. 2011. Australian Cretaceous Cnidaria and Porifera. Alcheringa: Australas J Palaeontol, 35(2): 241-284, doi:10.1080/03115518.2011.532322.

        Keller N B. 1976. The deep-sea madreporian corals of the genus Fungiacyathus from the Kurile-Kamchatka, Aleurian Trenches and other regions of world ocean. Tr Inst Okeanol, 99: 31-44 (in Russian).

        Kellner A W A. 2019. A reconstru??o do Museu Nacional: bom Para o Rio, bom Para o Brasil!. Ciên Cult, 71(3): 4-5, doi:10.21800/2317-666 02019000300002.

        Kellner A W A, Say?o J M, Riff D, et al. 2018. An unusual reptile bone (Pterosauria) from the Cretaceous deposits of the James Ross Island, Antarctic Peninsula//Rio de Janeiro, Brazil: 49° Congresso Brasileiro de Geologia, Congr. Bras. Geol.

        Kellner A W A, Sim?es T, Riff D, et al. 2011. The oldest plesiosaur (Reptillia, Sauropterygia) from Antarctica. Polar Res, 30: 1-6.

        Lamarck J B. 1801. Système des animaux sans vertèbres ou tableau général des classes, des ordres, et des genres de ces animaux, Paris: Chez Deterville.

        Lamberts A E. 1982. The reef coral Astreopora (Anthozoa, Scleractinia, Astrocoeniidae): A revision of the taxonomy and description of a new species. Pac Sci, 36(1): 83-105.

        Leloux J. 1999. Numerical distribution of Santonian to Danian corals (Scleractinia, Octocorallia) of southern Limburg, the Netherlands. Neth J Geosci, 78(2): 191-195, doi:10.1023/A:1003743301625.

        Lirio J M, Marenssi S A, Santillana S N, et al. 1989. Marambio Group at the south eastern part of James Ross Island, Antarctica. Contribución del Instituto Antártico Argentino, 371: 1-45.

        L?ser H, Liao W H. 2001. Cretaceous corals from Tibet (China)—stratigraphic and palaeobiogeographic aspects. J Asian Earth Sci, 19(5): 661-667, doi:10.1016/s1367-9120(00)00063-8.

        Luther A. 1999. Paleoecological, taxonomical, biostratigraphical and sedimentological investigations in the Upper Cretaceous of southeastern James Ross Island, Antarctic Peninsula, Antarctica. Doctoral thesis. Germany: University of Heidelberg.

        Medina F A, Buatois L, Lopez-Angriman A. 1992. Estratigrafía del Grupo Gustav en la Isla James Ross, Antártida//Rinaldi C A. Geología de la Isla James Ross, Antártida. Buenos Aires: Contribución del Instituto Antártico Argentino, 167-192.

        Medina F A, Scasso R A, Del Valle R A, et al. 1989. Cuenca mesozoica del margen nororiental de la peninsula Antártica//Chebli G, Spalleti L. Cuencas sedimentarias argentinas. San Miguel de Tucumán: Instituto Superior de Correlación Geológica, 443-465.

        Michelin H. 1844. Iconographie zoophytologique. Description par localités et terrains des polypiers fossiles de France. Bertrand: Paris, 105-144, doi: 10.5962/bhl.title.11504.

        Milanese F N, Olivero E B, Kirschvink J L, et al. 2017. Magnetostratigraphy of the rabot formation, Upper Cretaceous, James Ross Basin, Antarctic Peninsula. Cretaceous Res, 72: 172-187, doi:10.1016/j.cretres.2016.12.016.

        Milner-Edwards H, Haime J. 1850. Monograph of the British fossil corals. London: Paleontographical Society.

        Moseley H N. 1881. Report on certain hydroid, alcyonarian, and madreporian corals procured during the voyage of H.M.S. Challenger, in the years 1873-1876 Part 3. On the deep-sea Madreporaria. Report on the scientific results of the voyage of the H.M.S. Challenger during the years 1873-1876. Zoology, 2: 127-208, 238-248.

        Novas F E, D’Angelo J S, O’Gorman J P, et al. 2015. First record of Polycotylidae (Sauropterygia, Plesiosauria) from the Upper Cretaceous of Antarctica. Cretaceous Res, 56: 563-568, doi:10.1016/j. cretres.2015.06.015.

        Olivero E B. 1992. Asociaciones de ammonites de la Formación Santa Marta (Cretácico tardio), Isla James Ross, Antartida. Geología de Isla James Ross: Antartida, Instituto Antártico Argentino, 47-76.

        Olivero E B. 2012a. Sedimentary cycles, ammonite diversity and palaeoenvironmental changes in the Upper Cretaceous Marambio Group, Antarctica. Cretaceous Res, 34: 348-366, doi:10.1016/j.cretres. 2011.11.015.

        Olivero E B. 2012b. New Campanian kossmaticeratid ammonites from the James Ross Basin, Antarctica, and their possible relationships with Jimboiceras? antarcticum Riccardi. Rev de Paleobiologie, 11: 133-149.

        Olivero E B, Medina F A. 2000. Patterns of late Cretaceous ammonite biogeography in southern high latitudes: the family Kossmaticeratidae in Antarctica. Cretaceous Res, 21(2-3): 269-279, doi:10.1006/cres. 1999.0192.

        Olivero E, Scasso R A, Rinaldi C A. 1986. Revisión del Grupo Marambio en La Isla James Ross – Antártida. Buenos Aires: Contribución del Instituto Antártico Argentino, 331: 1-29.

        Pirrie D. 1989. Shallow marine sedimentation within an active margin basin, James Ross Island, Antarctica. Sediment Geol, 63(1-2): 61-82, doi:10.1016/0037-0738(89)90071-7.

        Pirrie D, Crame J A, Lomas S A, et al. 1997. Late Cretaceous stratigraphy of the Admiralty Sound region, James Ross Basin, Antarctica. Cretaceous Res, 18(1): 109-137, doi:10.1006/cres.1996.0052.

        Pirrie D, Marshall J D. 1990. High-paleolatitude Late Cretaceous paleotemperatures: new data from James Ross Island, Antarctica. Geology, 18(1): 31-34, doi:10.1130/0091-7613(1990)018<0031: hplcpn>2.3.co;2.

        Prinz P. 1991. Mesozoishe Korallen aus Nordchile. Paleontogr Abt A, 216: 147-209.

        Reguero M A, Olivero E B, Pol D. 2016. Gondwanan perspectives: Cretaceous—Paleogene biota of west Antarctica. Ameghiniana, 53(3): 241-244, doi:10.5710/amgh.27.05.2016.3025.

        Riding J B, Crame J A. 2002. Aptian to Coniacian (Early–Late Cretaceous) palynostratigraphy of the Gustav Group, James Ross Basin, Antarctica. Cretaceous Res, 23 (6): 739-760, doi:10.1006/cres.2002.1024.

        Rinaldi C A, Massabie A, Morelli J, et al. 1978. Geologia de la Isla Vicecomodoro Marambio. Contribución del Instituto Antártico Argentino, 217: 1-37.

        Sars M. 1872. On some remarkable forms of animal life from the great deeps off the Norwegian Coast//Sars G O. University Program for the First Half-Year 1869. Christiana: Brogger and Christie.

        Say?o J M, Lima F J, Riff D, et al. 2017. Inside the warmer Antarctica: microscopial characterization of charcoal in the Upper Cretaceous Santa Maria Formation, James Ross Island//Ribeir?o Preto, Brazil: XXV Congresso Brasileiro de Paleontologia, Congr Bras Paleontol.

        Scasso R A, Olivero E B, Buatois L A. 1991. Lithofacies, biofacies, and ichnoassemblage evolution of a shallow submarine volcaniclastic fan-shelf depositional system (Upper Cretaceous, James Ross Island, Antarctica). J S Am Earth Sci, 4(3): 239-260, doi:10.1016/0895- 9811(91)90034-i.

        Scheffler S M. 2019. Geologia e Paleontologia: Paleoinvertebrados. Rio de Janeiro, Museu Nacional, Universidade Federal do Rio de Janeiro, Rel Anual (2018) do Museu Nacional, 86-88.

        Sohl N F, Koch C F. 1984. Upper Cretaceous (Maestrichtian) larger invertebrate fossils from the Haustator bilira Assemblage Zone in the West Gulf Coastal Plain. USGS Open-File Report, 84-687: 1-282, doi: 10.3133/ofr84687.

        Stephenson L W. 1941. The larger invertebrate fossils of the Navarro group of Texas. Texas: The University of Texas Publication.

        Stolarski J. 1996. Paleogene corals from Seymour Island, Antarctic Peninsula//Gazdzicki A. Palaeontological results of the Polish Antarctic Expeditions. Part II. Warszawa: Palaeontologia Polonica, 55: 51-63.

        Turnsek D, Lemone D V, Scott R W. 2003. Tethyan Albian corals, Cerro de Cristo Rey Uplift, Chihuahua and New Mexico. Cretaceous Stratigraphy and Paleoecology, Texas and Mexico: Perkins Memorial Volume. Gulf Coast Section Society of Economic Paleontologists and Mineralogists Foundation, Special Publications in Geology, 1:147-185.

        Vaughan T W, Wells J W. 1943. Revision of the suborders families, and genera of the Scleractinia. Boulder: Geological Society of America Special Papers.

        Verrill A E. 1865. XXVI.—classification of polyps. (extract condensed from a synopsis of the polypi of the north Pacific exploring expedition under captains ringgold and Rodgers, USN. J Nat Hist, 16(93): 191-197, doi:10.1080/00222936508679407.

        Verrill A E. 1902. Variation and nomenclature of Bermudian, West Indian and Brazilian reef corals with notes on various Indo-Pacific Corals. Trans Conn Acad Arts Sci: 63-168.

        Waller R G, Feehan K A. 2013. Reproductive ecology of a polar deep-sea scleractinian, Fungiacyathus marenzelleri (Vaughan, 1906). Deep-Sea Res Pt II, 92: 201-206, doi:10.1016/j.dsr2.2013.03.006.

        Wells J W. 1932. Corals of the Trinity Group of the Comanchean of central Texas. J Paleontol, 6(3): 225-256.

        Wells J W. 1933. Corals of the Cretaceous of the Atlantic and Gulf Coastal plains and western interior of the United States. Bull Am Paleontol, 18(67): 85-288.

        Wells J W. 1956. Scleractinia//Moore R C. Treatise on Invertebrate Paleontology, Part F, Coelenterata, Lawrence: University of Kansas Press, 329-478.

        Whitham A G, Ineson J R, Pirrie D. 2006. Marine volcaniclastics of the Hidden Lake Formation (Coniacian) of James Ross Island, Antarctica: an enigmatic element in the history of a back-arc basin. Geol Soc London Spec Pub, 258(1): 21-47, doi:10.1144/gsl.sp.2006. 258.01.03.

        Yabe H, Eguchi M. 1942. Fossil and recent simple corals from Japan. Sci Rep Tohoku Imp Univ Geol, 22(2): 105-178.

        Zinsmeister W J. 1979. Biogeographic significance of the late Mesozoic and early Tertiary molluscan faunas of Marambio Island (Antarctic Peninsula) to the final break-up of Gondwanaland//Gray J, Boucot A J. Historical biogeography, plate tectonics and the changing environment. Corvallis: Oregon State University Press, 349-355.

        Zinsmeister W J. 1982. Late Cretaceous–early Tertiary molluscan biogeography of the southern circum-Pacifc. J Paleontol, 56: 84-102.

        日韩精品一区二区三区在线观看| 亚洲av无码专区电影在线观看| 久久精品麻豆日日躁夜夜躁| 国产成人精品日本亚洲| 狠狠人妻久久久久久综合| 久久精品国产屋| 91精品视品在线播放| 亚洲网站免费看| 国产一区二区在线观看视频免费| 日韩av天堂综合网久久| 两人前一后地插着她丰满| 精品露脸国产偷人在视频| 中文字幕人妻中文| 亚洲 自拍 另类 欧美 综合 | 亚洲人在线观看| 精精国产xxx在线视频app| 白色月光免费观看完整版| 99久久精品无码一区二区毛片| 精品国产拍国产天天人 | 日本激情视频一区在线观看| 亚洲女同性恋激情网站| 国产精品午夜夜伦鲁鲁| 无码av不卡一区二区三区 | 区二区欧美性插b在线视频网站| 国产成人美女AV| 中文字幕一区二区人妻痴汉电车| 按摩师玩弄少妇到高潮av| 国产猛烈高潮尖叫视频免费| 日日碰狠狠躁久久躁9| 久久久久久岛国免费网站| 久久亚洲一区二区三区四区五| 国产自拍成人免费视频| 亚洲精品无码av人在线观看| 国产精品久久毛片av大全日韩| 日本视频中文字幕一区在线| 日韩精品视频在线一二三| 美女丝袜诱惑在线播放蜜桃| 亚洲最新无码中文字幕久久 | 国产精品视频免费的| 久久久成人av毛片免费观看| 99精品国产综合久久麻豆|