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Figure 5 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Figure 5 Geckos species identified in this study. Sampling localities for each photographed individual are indicated. ANP ES – Andringitra National Park Eastern Slopes; ANP WS – Andringitra National Park Western Slopes (Fig. 1; Suppl. material 1: Table S1). A.Hemidactylus mercatorius from Tsaranoro; B.Lygodactylus pictus from Belambo (ANP ES); C.Lygodactylus sp. aff. pictus Ca01 "Isalo" from Ambatomainty; D.Paragehyra felicitae from Anja; E.Paragehyra sp. aff. felicitae "Tsaranoro" from Tsaranoro; F.Paroedura rennerae from Anja; G.Paroedura sp. aff. bastardi Lineage D from Anja; H.Phelsuma barbouri from Belambo (ANP ES); I.Phelsuma gouldi from Tsaranoro; J.Phelsuma lineata elanthana from Fivahona–Velotsoa. Photographs by Javier Lobón-Rovira (A–G, I–J) and Gonçalo M. Rosa (H).
Supplementary material 6 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Table S6. Within taxa uncorrected p–distances (COI) of reptile taxa identified in this study
Supplementary material 9 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Table S7. Locality records of amphibian and reptile species identified in this study
Figure 6 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Figure 6 Scincid, gerrhosaurid and oplurid species identified in this study. Sampling localities for each photographed individual are provided. ANP ES – Andringitra National Park Eastern Slopes; ANP WS – Andringitra National Park Western Slopes (Fig. 1; Suppl. material 1: Table S1). A.Oplurus grandidieri from Anja; B.Oplurus quadrimaculatus from Anja; C.Zonosaurus laticaudatus from Anja; D.Zonosaurus ornatus from Antanifotsy 2; E.Zonosaurus aeneus from Namoly; F.Trachylepis elegans from Iantaranomby (ANP WS); G.Trachylepis gravenhorstii from Anja; H.Trachylepis sp. aff. vato from Asaramanitra (ANP ES); I.Trachylepis boettgeri from Antanifotsy 3. Photographs by Javier Lobón-Rovira.
Figure 1 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Figure 1 Map of the study area and sampling sites. The borders of Andringitra National Park (red) and Paysage Harmonieux Protégé du Corridor Forestier Ambositra–Vondrozo (Ambositra–Vondrozo Forest Corridor) (blue) are shown. See Suppl. material 1: Table S1 for more details on the sampled localities. Map data ©2015 Google (QGIS Development Team 2020). ANP ES – Andringitra National Park Eastern Slopes; ANP WS – Andringitra National Park Western Slopes. A. Anja; B. Sakaviro; C. Ambatomainty; D. Western slopes of the Andringitra Massif from Iantaranomby (ANP WS); E. Imaitso (ANP ES); F. Belambo (ANP ES); G. Fivahona–Velotsoa; H. Map with sampling sites. Photographs by Javier Lobón-Rovira.
Figure 4 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Figure 4 Chameleonid species identified in this study. The picture of the individual identified as Furcifer willsii from Fivahona–Velotsoa, found within the stomach content of a Mimophis mahfalensis, is not shown. Sampling localities for each photographed individual are provided. ANP ES – Andringitra National Park Eastern Slopes; ANP WS – Andringitra National Park Western Slopes (Fig. 1; Suppl. material 1: Table S1). A.Brookesia brunoi from Anja; B.Calumma andringitraense from Imaitso (ANP ES); C.Calumma crypticum from Imaitso (ANP ES); D.Calumma fallax from Asaramanitra (ANP ES); E.Palleon nasus from Namoly; F.Furcifer lateralis from Iantaranomby (ANP WS); G.Furcifer major from Anja; H.Furcifer nicosiai from Tsaranoro; I.Furcifer oustaleti from Anja. Photographs by Javier Lobón-Rovira.
Supplementary material 3 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Table S3. Amphibian samples identified in this study
Supplementary material 8 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Reptiles Neighbor joining tree of the cytochrome oxidase I gene
Supplementary material 4 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Table S4. Reptile samples identified in this study
Supplementary material 2 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Table S2. Amplified genes, primers and PCR conditions used in this study
Supplementary material 7 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Figure S1. Amphibians Neighbor joining tree of the 16S rRNA gene 3' terminus
BIBO_GM_BP_10y
<p>BIBO_GM_BP_10y</p>
XYZ coordinates of middle lumbar vertebrae - 3D GM analysis for: A nearly complete lower back of Australopithecus sediba
<p>Adaptations of the lower back to bipedalism are frequently discussed but infrequently demonstrated in early fossil hominins. Newly discovered lumbar vertebrae contribute to a near-complete lower back of Malapa Hominin 2 (MH2), offering additional insights into posture and locomotion in <i>Australopithecus sediba</i>. We show that MH2 demonstrates a lower back consistent with lumbar lordosis and other adaptations to bipedalism, including an increase in the width of intervertebral articular facets from the upper to lower lumbar column ("pyramidal configuration"). These results contrast with some recent work on lordosis in fossil hominins, where MH2 was argued to demonstrate no appreciable lordosis ("hypolordosis") similar to Neandertals. Our three-dimensional geometric morphometric (3D GM) analyses show that MH2's nearly complete middle lumbar vertebra is human-like in overall shape but its vertebral body is somewhat intermediate in shape between modern humans and great apes. Additionally, it bears long, cranially and ventrally oriented costal (transverse) processes, implying powerful trunk musculature. We interpret this combination of features to indicate that <i>A. sediba</i> used its lower back in both bipedal and ape-like arboreal positional behaviors, as previously suggested based on multiple lines of evidence from other parts of the skeleton and reconstructed paleobiology of <i>A. sediba</i>.</p>
Figure 2 from: Eshaghi B, Kiabi BH, Kashani GM (2015) The agnarid terrestrial isopods (Isopoda, Oniscidea, Agnaridae) of the province of Qazvin, Iran, with a description of a new species. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 59–66. https://doi.org/10.3897/zookeys.515.9125
Figure 2 - Protracheoniscus sarii sp. n., male, paratype. A pleopod endopodite I B pleopod exopodite I C pleopod II D pleopod exopodite III E pleopod exopodite IV F pleopod exopodite V. Scale = 0.1 mm
Figure 1 from: Eshaghi B, Kiabi BH, Kashani GM (2015) The agnarid terrestrial isopods (Isopoda, Oniscidea, Agnaridae) of the province of Qazvin, Iran, with a description of a new species. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 59–66. https://doi.org/10.3897/zookeys.515.9125
Figure 1 - Protracheoniscus sarii sp. n., male, paratype. A body outline with position of noduli laterales B cephalon and first pereonite C telson and uropods D antenna E pereopod 1 F pereopod 7. Scale = 1 mm.
Figure 3 from: Kashani GM (2015) First record and redescription of the terrestrial isopod Hemilepistoides messerianus Borutzky, 1945 (Isopoda, Oniscidea) from Iran. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 51–57. https://doi.org/10.3897/zookeys.515.9179
Figure 3 - Hemilepistoides messerianus, male, from [2]. A Telson and uropods B antenna C pereopod 1 D pereopod 7. scales: 0.5 mm.
Figure 4 from: Kashani GM (2015) First record and redescription of the terrestrial isopod Hemilepistoides messerianus Borutzky, 1945 (Isopoda, Oniscidea) from Iran. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 51–57. https://doi.org/10.3897/zookeys.515.9179
Figure 4 - Hemilepistoides messerianus, A–F male from [3] G–I female from [6]. A pleopod endopodite I B pleopod exopodite I C pleopod II D pleopod exopodite III E pleopod exopodite IV F pleopod exopodite V G pleopod exopodite I H pleopod exopodite II I pleopod exopodite V. Scales: 0.2 mm.
Figure 2 from: Kashani GM (2015) First record and redescription of the terrestrial isopod Hemilepistoides messerianus Borutzky, 1945 (Isopoda, Oniscidea) from Iran. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 51–57. https://doi.org/10.3897/zookeys.515.9179
Figure 2 - Hemilepistoides messerianus, female, from [2]. A Head and first pereonite, lateral view B head and first pereonite, dorsal view C head, frontal view D antennule and enlarged distal article.
Figure 1 from: Kashani GM (2015) First record and redescription of the terrestrial isopod Hemilepistoides messerianus Borutzky, 1945 (Isopoda, Oniscidea) from Iran. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 51–57. https://doi.org/10.3897/zookeys.515.9179
Figure 1 - Sampling localities of Hemilepistoides messerianus in Iran and position of the type locality (asterisk) in Turkmenistan. The numbers refer to localities listed in the material examined.
Figure 2 from: Costion CM, Plunkett GM (2016) A revision of the genus Osmoxylon (Araliaceae) in Palau, including two new species. PhytoKeys 58: 49-64. https://doi.org/10.3897/phytokeys.58.5292
Figure 2 - Osmoxylon ngardokense a compound inflorescence b inflorescence c inflorescence with mature fruits d inflorescences fruiting and flowering e flower head up close f mature fruits up close g petiolar stipule h petiole crests i leaf.
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