Subterranean Biology 34: 99-108 (2020) — rain Gare ie doi: 10.3897/subtbiol.34.50916 SHORT COMMUNICATION Arranea http://subtbiol.pensoft.net 10 Ogy The ernaional Society for Subterranean Biology First record of Pisidium subtruncatum Malm, 1855 (Bivalvia, Sphaeriidae) in an African cave Hanane Rassam!, Soumia Moutaouakil', Hassan Benaissa', Christian Albrecht?, Mohamed Ghamizi'! | Muséum d'Histoire Naturelle de Marrakech, Laboratoire Hydrobiologie, Ecotoxicologie, Assainissement et Changements globaux, Université Cadi Ayyad, Marrakech, Morocco 2 Department of Animal Ecology & Syste- matics, Justus Liebig University Giessen, Heinrich-Buff-Ring 26 (IFZ), 35392, Giessen, Germany Corresponding author: Hanane Rassam (hananerassam@gmail.com) Academic editor: O. T. Moldovan | Received 7 February 2020 | Accepted 18 March 2020 | Published 15 May 2020 Attp://zoobank. org/5F5 FA394-F FAD-403F-A741-E967722A1294 Citation: Rassam H, Moutaouakil S, Benaissa H, Albrecht C, Ghamizi M (2020) First record of Pisidium subtruncatum Malm, 1855 (Bivalvia, Sphaeriidae) in an African cave. Subterranean Biology 34: 99-108. https://doi.org/10.3897/ subtbiol.34.50916 Abstract Studies on the bivalve family Sphaeriidae in North Africa are very limited at the surface water level, but even more for caves. During an expedition in 2019 to the Ait M’hamed cave (Oum Er Rabia Basin), six specimens of the genus Pisidium were collected. Morphometric and genetic analyses showed that these individuals belong to the species Pisidium subtruncatum Malm, 1855. This work is the first step towards future exploration of cave Sphaeriidae in North Africa. Keywords Molluscs, Subterranean, Invertebrates, Biospeleology, Ait M’hamed, Morocco Introduction Pisidium is a genus of freshwater bivalves belonging to the family Sphaeriidae that includes the smallest bivalves on Earth. Despite their small size, Pisidium species can be used for bioindication studies (Horsak 2001) and the usefulness of these species as markers of metal and organic pollution has been proved repeatedly (e.g. Ingram et Copyright Hanane Rassam et al. This is an open access article distributed under the terms of the Creative Commons Attribution License (CC BY 4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. 100 Hanane Rassam et al. / Subterranean Biology 34: 99-108 (2020) al. 1953; Wurtz 1955; Anderson 1977; Gadzata-Kopciuch et al. 2004; Alhejoj et al. 2017). The group is cosmopolitan and occurs in temporary and permanent aquatic environments. Along with Dreissenidae, Sphaeriidae is the only family of bivalves in- habiting subterranean habitats (Culver 2012; Prié 2019). Their occurrence in caves has been reported by a number -albeit few- of authors from different localities (e.g. Pisid- ium hallae Kuiper, 1983, Sphaerium tasmanicum Tenison Woods, 1876 from Australia (Kuiper 1983; Korniushin 2000), Pisidium zoctanum Poli, 1876 and Pisidium crime- ana Stadnichenko, 1980 from Ukraine (Vargovitsh and Anistratenko 2016; Vinarski and Kantor 2016), Pisidium casertanum Poli, 1791 and Pisidium personatum Malm, 1855 from Scotland (Knight and Wood 2000; Knight 2018) and Pisidium lovushkini Starobogatov, 1962, P cavatica Zhadin, 1952 and P subterranea Zhadin, 1932 from Caucasus (Vinarski and Kantor 2016)). In North Africa, studies on the freshwater clams of caves are lacking. In fact, in Morocco, even fewer studies are limited to the distribution of Pisidium species were seven species are reported (Kuiper 1972) and where extreme environments such as caves are not prospected. The aim of this paper is to report for the first time the occurrence of a Sphaeriidae species in a Moroccan cave. Material and methods In May 2019, we prospected the Ait M’hamed cave. This cave is located in Oum Er Rabia basin at 1693 m of altitude (31°52'48"N, 06°27'02"W). The cave is dug at the bottom of a cliff in the calcareous of Bajocian — Bathonian period with horizontal stratification (Doat et al. 2005). The water flowing inside the cave is drained from a spring since it is permanent water even during dry season and expeditors reported the continuity of flow- ing tributaries even after more than 1500 m from the cave entrance (Doat et al. 2005). The entrance to the cave is wide, about 5 m large and 2.50 m high (Fig. 1A). Physical- chemical parameters of the water were measured at two points, the cave entrance and the waterfall (Table 1) using a multiparameter tool (H198194 portable probe). The sampling was carried out with a sieve of 200 um of diameter in muddy sed- iments and lead to the collecting of 6 specimens belonging to the genus Pisidium (Fig. 1B, C). The maximum distance explored of the cave is 4000 m, however, only 3052 m were topographically mapped (Fig. 2). The specimens were collected at two points: one at 100 m and the second at 500 m from the entrance. Specimens collected were placed in 80% ethanol for morphological and genetic analysis. No permit for sampling was required. In the laboratory, the identification of the specimens was based on morphologi- cal characters following the descriptions of Adam (1960) and Killeen et al. (2004) using a stereomicroscope (Leica Microsystems CH 9435 Loupe). On the basis of the scaled images of the shells obtained with the stereomicroscope, we used T'psDig v. 2.31 (Rohlf 2005) to produce the following shell measurements for a better morphological diagnosis: L (shell length), H (shell height), LP and LA (length of posterior and ante- rior parts respectively), LL (length of ligament), LE (umbo length), LH (hinge length) First record of Pisidium subtruncatum Malm, 1855 in an African cave 101 Figure |. Study area Ait M’hamed cave a The cave entrance b the sampling and € the inside of the cave (Moutaouakil 2019). Table |. Measurements of physical and chemical parameters at two localities in the cave system (see Fig. 2, May 2019). H(%) T(°C) TCC) of Dissolved Conductivity pH Nitrites Phosphateion Ammonium water oxygen. (mg/l) (uS/com) (g/mol) (g/mol) (g/mol) Cave entrance 28 20.7 20 5.32 421 72, 0.08 0.11 0.03 Waterfall 28 19.1 21.6 4.65 432 7.09 0.071 0.06 0.05 and HH (hinge height). The mean shape of the shells was obtained on the basis of semi landmark coordinates plotted with TpsRelw v. 1.70 (Rohlf 2003) (Fig. 4). Soft bodies were extracted for genetic analysis in order to confirm morphological identification. DNA isolation followed a CTAB protocol (Wilke et al. 2006). Amplifica- tion of mitochondrial gene fragments which are regularly used in sphaeriid barcoding and phylogenetics was unsuccessful. Therefore, Polymerase Chain Reaction after 9 cycles running for 1,5 h was performed with thermocycler Eppendorf Mastercycler using the nuclear gene H3 and primers of Colgan et al. (2000). Sequencing was carried out on an ABI 3730 at LGC Genomics, Berlin, Germany. Resulting sequences were checked in the NCBI database using nucleotide BLAST (BLASTn suite: megablast) returning highly similar sequences stored in the NCBI GenBank database (Zhang et al. 2000). The top five BLAST hits (sorted by max score; default) for each individual are shown in Table 3. 102 Hanane Rassam et al. / Subterranean Biology 34: 99-108 (2020) +2m ,floowed section i “yes + 100 m 700 m o aes Non “ — topographed —. Siphon Flooded section ( Flooded section Waterfall =o Tributary C Tributary non * topogra phed Flooded section Tributary B Waterfall ” a" a gt eal a Tributaires non Flooded section topographed Figure 2. Cave topography. Red points: Sampling localities (green crosses included), green crosses: P subtruncatum occurence. Figure 3. Two specimens of P subtruncatum from Ait M’hamed cave a, d external view of the shell of the left and right sides of both specimens b, e dorsal view of both specimens ¢, f internal view of left and right valves of both specimens. First record of Pisidium subtruncatum Malm, 1855 in an African cave Table 2. Measurements of internal shell features. N L H Mean+SD 4 2.96+0.81 2.28 + 0.53 LA 1.8 + 0.64 LP 1.16 + 0.31 LE 0.81+40.24 0.48 + 0.09 LL LH 1.44 + 0.3 103 HH 8 0.15 + 0.05 Table 3. List of the first five significant BLAST hits (NCBI GenBank accessed on 15/06/2019). Description Pisidium subtruncatum isolate 17469 histone 3 (H3) gene, partial cds Pisidium atkinsonianum isolate 6024 histone 3 (H3) gene, partial cds Pisidium viridarium isolate 15834 histone 3 (H3) gene, partial cds Pisidium personatum isolate 17456 histone 3 (H3) gene, partial cds Pisidium casertanum isolate 17462 histone 3 (H3) gene, partial cds Max score 599 595 590 590 586 E value 3e-167 3e-166 2e-164 2e-164 2e-163 Percent identity 99.39% 99.39% 99.09% 98.78% 98.78% a Figure 4. Mean overall shell outline shape of the four adult specimens of P subtruncatum shape was generated from semilandmarks coordinates of the right valves using the tpsRelw. Results and discussion Accession KU376244.1 KU376227.1 KU376246.1 KU376241.1 KU376228.1 . The mean Morphometric results of the four specimens collected showed that they have a length ranging between 3.49 and 1.91 mm and height between 2.93 and 1.62 mm. ‘The shell is silky with slight striations and the umbo is narrow and located posteriorly. The shape of the shell is sub-angulated, the most extreme point of the anterior part is located lower than the middle of the shell height (Figs 3, 4). The anterior part is clearly longer than the posterior part (see measurements on Table 2). The hinge is thicker, more or less wide. ‘The ligament pit is long. The left valve with two long cardinal teeth, the lower (C,) and the uppermost (C,) parallelly located, C, overlaps C, at anterior end, C, is long and slightly curved (Fig. 5). All individuals found in the present work are exactly similar Hanane Rassam et al. / Subterranean Biology 34: 99-108 (2020) Figure 5. Position and shapes of cardinal teeth and ligament pits in left (a) and right valve (b). c: car- dinal teeth. to the description given by other authors (for a review see Adam 1960; Piechocki 1989; Killeen et al. 2004). Moreover, the identification was also confirmed by a specialist re- searcher who is familiar with Pisidium (M. Zettler Warnemiinde 2019, in litt.). First record of Pisidium subtruncatum Malm, 1855 in an African cave 105 M8 Oum Er Rabia basin MM Sebou basin Figure 6. Map of occurrence localities of Pisidium subtruncatum from this paper and previous record (red triangles). Genetic results did not contradict the identification of the species as P subtrun- catum and, as presented in the list of significant BLAST hits (Table 3), the five first sequences with the highest similarity with our sequences are Pisidium subtruncatum, Pisidium atkinsonianum Theobald, 1876, Pisidium viridarium Kuiper, 1956, Pisidium personatum and Pisidium casertanum, all from Nepal (Boessneck et al. 2016). With all uncertainty related to the conservative nature of the marker H3, these results (max score 599, see Table 3) support the morphological determination of the cave specimens as P subtruncatum. P. subtruncatum was already recorded in a river of the Sebou basin (Kuiper 1972) (Fig. 6), but no published studies cited the presence of this species in the Oum Er Rbia basin. The IUCN conservation status of this species in North Africa is considered as endangered because of its restricted area of occupancy and declining quality of habitat (Garcia et al. 2010). The four individuals collected were from two localities and they inhabited a dark and muddy environment with no sign of anthropogenic influence. The water depth did not exceed 1 m and its overall quality is assessed as good (Table 1) (ONSSA 2018). The ecology of the genus Pisidium is resulting in surprising flexibility 106 Hanane Rassam et al. / Subterranean Biology 34: 99-108 (2020) as outlined by the current finding of a species living in the solid interstitial environ- ment in Germany (Groh et al. 2020). Pisidium subtruncatum is an euryecious species with a palearctic distribution, inhabiting different kinds of habitats, its optimum con- ditions are met in small rivers with sandy-muddy substratum (Piechocki 1989), espe- cially when being concentrated with macro-ions and organic matter (Bespalaya 2015). This agrees with our findings (e.g. high conductivity). The influence of darkness was not considered for the present note; however, it is known that all bivalves have light- sensitive cells (Cofransesco 2002) and the impact of light on bivalves growth had been proved by Medcof and Kerswill (1965). Conclusion In general, the Sphaeriidae family is neglected in North Africa and studies on this group of benthic organisms are very limited compared to other taxa. ‘The originality of this work consists in the recording for the first time of a member of the Sphaeriidae family in an African cave and to our knowledge the first record of P subtruncatum in a cave. Studies such as ours reported here should be expanded to other caves in Morocco (Fig. 6). This is important in order to enhance our faunal knowledge and to determine the actual conservation status of Pisidium species. 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