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РИС. 5. Поверхности створки глохидиЯ со скульптурой и порами: А – наруЖнаЯ; В –внутреннЯЯ. Масштабные линейки 10 мкм. СканируюЩаЯ ЭлектроннаЯ микроскопиЯ. FIG. 5. Valve surfaces with the sculpture and pores: A – exterior; B – interior. Scale bars 10 µm. Scanning electron microscopy. in Первые данные о морфологии глохидиев двустворчатых моллюсков Beringiana beringiana (Bivalvia, Unionidae) оЗера Дальнее, Камчатка
РИС. 5. Поверхности створки глохидиЯ со скульптурой и порами: А – наруЖнаЯ; В –внутреннЯЯ. Масштабные линейки 10 мкм. СканируюЩаЯ ЭлектроннаЯ микроскопиЯ. FIG. 5. Valve surfaces with the sculpture and pores: A – exterior; B – interior. Scale bars 10 µm. Scanning electron microscopy.
РИС. 3. Раковины Зрелых глохидиев Beringiana beringiana в раЗных ракурсах: А–С – Закрытые раковины, вид со стороны створки (А), вентрального угла (В) и лигамента (С); D–F – полностью открытые раковины, вид иЗнутри (D), снаруЖи (E) и боковых краев створок (F); G, H – приоткрытые раковины, стрелка укаЗывает на остатки волокон мускулаЗамыкателЯ. МасштабнаЯ линейка 100 мкм. СканируюЩаЯ ЭлектроннаЯ микроскопиЯ. FIG. 3. Mature glochidial shells of Beringiana beringiana from different angles of view: A–C – closed shells, view from the valve side (A), ventral angle (B), and ligament (C); D–F – open shells, interior view (D), exterior view (E), and from lateral margins of valves (F); G, H – ajar shells, the arrows indicate the remains of the adductor muscle fibers. Scale bar 100 µm. Scanning electron microscopy. in Первые данные о морфологии глохидиев двустворчатых моллюсков Beringiana beringiana (Bivalvia, Unionidae) оЗера Дальнее, Камчатка
РИС. 3. Раковины Зрелых глохидиев Beringiana beringiana в раЗных ракурсах: А–С – Закрытые раковины, вид со стороны створки (А), вентрального угла (В) и лигамента (С); D–F – полностью открытые раковины, вид иЗнутри (D), снаруЖи (E) и боковых краев створок (F); G, H – приоткрытые раковины, стрелка укаЗывает на остатки волокон мускулаЗамыкателЯ. МасштабнаЯ линейка 100 мкм. СканируюЩаЯ ЭлектроннаЯ микроскопиЯ. FIG. 3. Mature glochidial shells of Beringiana beringiana from different angles of view: A–C – closed shells, view from the valve side (A), ventral angle (B), and ligament (C); D–F – open shells, interior view (D), exterior view (E), and from lateral margins of valves (F); G, H – ajar shells, the arrows indicate the remains of the adductor muscle fibers. Scale bar 100 µm. Scanning electron microscopy.
Рис. 12. Характер фрагментации и повреЖдений створок спиЗулы сахалинской Spisula sachalinensis иЗ раскопа 1. Fig. 12. Fragmentation and preservation patterns of valves of Spisula sachalinensis from excavation 1. in Mollusks from the shell-midden of the Telyakovskogo 2 site in southern Primorye (Yankovskaya culture), their paleoecology and role in paleoeconomy
Рис. 12. Характер фрагментации и повреЖдений створок спиЗулы сахалинской Spisula sachalinensis иЗ раскопа 1. Fig. 12. Fragmentation and preservation patterns of valves of Spisula sachalinensis from excavation 1.
Рис. 11. Характер фрагментации створок приморского гребешка (Mizuhopecten yessoensis) иЗ раскопа 1. Fig. 11. Fragmentation patterns of valves of the Japanese scallop (Mizuhopecten yessoensis) from excavation 1. in Mollusks from the shell-midden of the Telyakovskogo 2 site in southern Primorye (Yankovskaya culture), their paleoecology and role in paleoeconomy
Рис. 11. Характер фрагментации створок приморского гребешка (Mizuhopecten yessoensis) иЗ раскопа 1. Fig. 11. Fragmentation patterns of valves of the Japanese scallop (Mizuhopecten yessoensis) from excavation 1.
Рис. 13. Частотно-раЗмерное распределение створок спиЗулы сахалинской (Spisula sachalinensis) иЗ раковинной кучи (все выборки). Fig. 13. Size-frequency distribution of valves of Spisula sachalinensis from the shell-midden (all samples). in Mollusks from the shell-midden of the Telyakovskogo 2 site in southern Primorye (Yankovskaya culture), their paleoecology and role in paleoeconomy
Рис. 13. Частотно-раЗмерное распределение створок спиЗулы сахалинской (Spisula sachalinensis) иЗ раковинной кучи (все выборки). Fig. 13. Size-frequency distribution of valves of Spisula sachalinensis from the shell-midden (all samples).
Рис. 10. Характер повреЖдений створок приморского гребешка (Mizuhopecten yessoensis) иЗ раскопа 1. Fig. 10. Fragmentation patterns of valves of the Japanese scallop (Mizuhopecten yessoensis) from excavation 1. in Mollusks from the shell-midden of the Telyakovskogo 2 site in southern Primorye (Yankovskaya culture), their paleoecology and role in paleoeconomy
Рис. 10. Характер повреЖдений створок приморского гребешка (Mizuhopecten yessoensis) иЗ раскопа 1. Fig. 10. Fragmentation patterns of valves of the Japanese scallop (Mizuhopecten yessoensis) from excavation 1.
Рис. 9. Частотно-раЗмерное распределение створок устрицы (Crassostrea gigas) иЗ раковинной кучи (все выборки). Fig. 9. Size-frequency distribution of valves of the giant oyster (Crassostrea gigas) from the shell-midden (all samples). in Mollusks from the shell-midden of the Telyakovskogo 2 site in southern Primorye (Yankovskaya culture), their paleoecology and role in paleoeconomy
Рис. 9. Частотно-раЗмерное распределение створок устрицы (Crassostrea gigas) иЗ раковинной кучи (все выборки). Fig. 9. Size-frequency distribution of valves of the giant oyster (Crassostrea gigas) from the shell-midden (all samples).
Рис. 4. РаЗведочный шурф, виден слой раковин (раковинная куча) и масса створок спиЗулы сахалинской (Spisula sachalinensis) (Желтая стрелка). Fig. 4. A prospecting pit, a layer of shells (shell-midden) and numerous valves of Spisula sachalinensis (yellow arrow) are seen. in Mollusks from the shell-midden of the Telyakovskogo 2 site in southern Primorye (Yankovskaya culture), their paleoecology and role in paleoeconomy
Рис. 4. РаЗведочный шурф, виден слой раковин (раковинная куча) и масса створок спиЗулы сахалинской (Spisula sachalinensis) (Желтая стрелка). Fig. 4. A prospecting pit, a layer of shells (shell-midden) and numerous valves of Spisula sachalinensis (yellow arrow) are seen.
Agonopterix carduella Cuiller sehr kräftig und gegen die Basis der Valve gekrümmt. Anellus lang, zungenförmig und erreicht die Transtilla. Aedeagus mit sehr kleinem basalen Fortsatz, mit vielen kleinen Cornuti, die eine grosse Fläche einnehmen. in Agonopterix flurii sp. nov. aus dem Wallis, Schweiz (Lepidoptera, Depressariidae)
Agonopterix carduella Cuiller sehr kräftig und gegen die Basis der Valve gekrümmt. Anellus lang, zungenförmig und erreicht die Transtilla. Aedeagus mit sehr kleinem basalen Fortsatz, mit vielen kleinen Cornuti, die eine grosse Fläche einnehmen.
Agonopterix propinquella Valve flächig und an der Spitze abgerundet, aber deutlich breiter als bei A. flurii. Cuiller steht rechtwinklig auf dem Hinterrand der Valve, ist gerade und ist etwas länger als die halbe Valvenbreite. Anellus oben leicht eingebuchtet, oberer Teil des Anellus etwa gleich breit wie hoch. Aedeagus mit kleinem spitzen Basalfortsatz, leicht gewinkelt, viele kleine Cornuti mit länglichem Umriss in Agonopterix flurii sp. nov. aus dem Wallis, Schweiz (Lepidoptera, Depressariidae)
Agonopterix propinquella Valve flächig und an der Spitze abgerundet, aber deutlich breiter als bei A. flurii. Cuiller steht rechtwinklig auf dem Hinterrand der Valve, ist gerade und ist etwas länger als die halbe Valvenbreite. Anellus oben leicht eingebuchtet, oberer Teil des Anellus etwa gleich breit wie hoch. Aedeagus mit kleinem spitzen Basalfortsatz, leicht gewinkelt, viele kleine Cornuti mit länglichem Umriss
Agonopterix subpropinquella Valve flächig, aber spitziger als bei A. propinquella. Cuiller ist leicht nach innen gebogen und macht ¾ der Valvenbreite aus. Anellus oben leicht eingebuchtet, darüber ein sehr charakteristisches "Sahnehäubchen". Aedeagus mit kleinem spitzen Basalfortsatz, viele kleine Cornuti mit länglichem Umriss. in Agonopterix flurii sp. nov. aus dem Wallis, Schweiz (Lepidoptera, Depressariidae)
Agonopterix subpropinquella Valve flächig, aber spitziger als bei A. propinquella. Cuiller ist leicht nach innen gebogen und macht ¾ der Valvenbreite aus. Anellus oben leicht eingebuchtet, darüber ein sehr charakteristisches "Sahnehäubchen". Aedeagus mit kleinem spitzen Basalfortsatz, viele kleine Cornuti mit länglichem Umriss.
Text-fig. 8. SEM (a, b) and SRXTM (c, d) images of fruit associated with Miranthus elegans and Miranthus kvacekii; Mira locality, Portugal. a: Apical view of capsular fruit with five, partly open valves revealing the enclosed reticulate seeds (arrows). b: Detail of fruit wall showing an enclosed seed (arrow). c: Transverse section (orthoslice xy1200) of fruit showing central column (cc) of placenta and numerous angular and bitegmic seeds; note that the outer integument (black arrow) is thicker than inner integument (white arrow). d: Longitudinal section (orthoslice yz1239) of fruit showing perigynous attachment of calyx, central column (cc) of the placenta and sections through seeds. Specimen, Mira 99-S156331 (a–d). Scale bars = 600 µm (a, c, d), 200 µm (b). in Early Flowers Of Primuloid Ericales From The Late Cretaceous Of Portugal And Their Ecological And Phytogeographic Implications
Text-fig. 8. SEM (a, b) and SRXTM (c, d) images of fruit associated with Miranthus elegans and Miranthus kvacekii; Mira locality, Portugal. a: Apical view of capsular fruit with five, partly open valves revealing the enclosed reticulate seeds (arrows). b: Detail of fruit wall showing an enclosed seed (arrow). c: Transverse section (orthoslice xy1200) of fruit showing central column (cc) of placenta and numerous angular and bitegmic seeds; note that the outer integument (black arrow) is thicker than inner integument (white arrow). d: Longitudinal section (orthoslice yz1239) of fruit showing perigynous attachment of calyx, central column (cc) of the placenta and sections through seeds. Specimen, Mira 99-S156331 (a–d). Scale bars = 600 µm (a, c, d), 200 µm (b).
Text-fig. 1. Diplopanax cacaoides (ZENKER) comb. nov. a–d: [Holotype of Mastixia cantia E.REID et M.CHANDLER, V.22953]. a: Lateral view of longitudinally broken specimen, reflected light. b–d: Surface renderings from micro-CT data. b: Lateral view of longitudinal fracture surface. c: Same specimen rotated to show external surface. d: Enlargement of lower half from (a, b), reflected light. e, f: Specimen figured originally as a paratype of M. cantia, V.22954 (Reid and Chandler 1933: pl. 25, fig. 3), reflected light. e: Ventral view with much of the endocarp wall fallen away exposing smooth convex ventral surface of locule cast. f: Transversely fractured surface, showing thick wall of the endocarp, and dehiscence plane leading to the left limb of the locule. g: Transversely sectioned, laterally compressed specimen from Miocene of Wiesa, Germany for comparison, Senckenberg Museum, SM.B. 21034/I. h–j: Digital transverse sections from micro-CT data of the Holotype V.22953. h: Transverse fracture surface from (b), showing curved locule and zone of weakness defining the germination valve (arrow), reflected light. i: Same orientation with clear demarcation of the separation plane of the germination valve (arrow), digital section from micro-CT scan. j: Enlargement from (h). Scale bars 5 mm. in Mastixioid Fruits (Cornales) From The Early Eocene London Clay Flora: Morphology, Anatomy And Nomenclatural Revision
Text-fig. 1. Diplopanax cacaoides (ZENKER) comb. nov. a–d: [Holotype of Mastixia cantia E.REID et M.CHANDLER, V.22953]. a: Lateral view of longitudinally broken specimen, reflected light. b–d: Surface renderings from micro-CT data. b: Lateral view of longitudinal fracture surface. c: Same specimen rotated to show external surface. d: Enlargement of lower half from (a, b), reflected light. e, f: Specimen figured originally as a paratype of M. cantia, V.22954 (Reid and Chandler 1933: pl. 25, fig. 3), reflected light. e: Ventral view with much of the endocarp wall fallen away exposing smooth convex ventral surface of locule cast. f: Transversely fractured surface, showing thick wall of the endocarp, and dehiscence plane leading to the left limb of the locule. g: Transversely sectioned, laterally compressed specimen from Miocene of Wiesa, Germany for comparison, Senckenberg Museum, SM.B. 21034/I. h–j: Digital transverse sections from micro-CT data of the Holotype V.22953. h: Transverse fracture surface from (b), showing curved locule and zone of weakness defining the germination valve (arrow), reflected light. i: Same orientation with clear demarcation of the separation plane of the germination valve (arrow), digital section from micro-CT scan. j: Enlargement from (h). Scale bars 5 mm.
Text-fig. 6. Cornaceae. Alangium (a–e), Mastixia (f–r). a–e: Alangium, DMNH EPI.47806. Scale bar = 1 cm. b, e: Reflected light, palladium coated. a, c, d: Micro-CT scan surface rendering. a: Locule cast, face view of slightly larger locule. b: Face view of slightly smaller locule. c: Lateral view of the endocarp, the slightly enlarged left carpel separated from the smaller carpel by a longitudinal septal groove; the faint pitting in the groove suggestive of the septal vasculature. d, e: Views of either end of the endocarp, illustrating the size difference between the two carpels and the pitting in the septal groove suggestive of the septal vasculature. f–k: Mastixia USNM PAL 772362. Scale bar = 1 cm. f, g, j, k: reflected light, palladium coated; h, i: micro-CT scan surface rendering. f: Lateral view of endocarp, inferred dorsal germination valve groove facing the viewer. Note irregular, rugose, longitudinal ridges. g: Lateral view of endocarp, inferred germination valve with median longitudinal groove to left. h: Lateral view of endocarp reoriented with the same longitudinal groove to the right. i: Lateral view, rotated to ventral surface. j: View of one end of the endocarp, germination valve groove up. k: Opposite end view, with prominent radial ridges and intervening grooves, germination valve groove up. l–r: Mastixia USNM PAL 772363. Scale bar = 1 cm. l: View of one face of endocarp, displaying a groove that may represent the surficial expression of the dorsal infold of a Mastixia-like germination valve. Surface badly eroded, reflected light, palladium coated. m: Opposite face of endocarp displaying extensive erosion and a central hole interpreted as feeding damage. n: Lateral view; m, n micro-CT scan surface renderings. o: A view of one end, displaying the prominent groove, reflected light, palladium coated. p: Opposite end to (o). q: View as in (o); p, q micro-CT scan surface renderings. r: Virtual transverse section showing curved locule (arrows). in The Early Middle Eocene Wagon Bed Carpoflora Of Central Wyoming, U.S.A.
Text-fig. 6. Cornaceae. Alangium (a–e), Mastixia (f–r). a–e: Alangium, DMNH EPI.47806. Scale bar = 1 cm. b, e: Reflected light, palladium coated. a, c, d: Micro-CT scan surface rendering. a: Locule cast, face view of slightly larger locule. b: Face view of slightly smaller locule. c: Lateral view of the endocarp, the slightly enlarged left carpel separated from the smaller carpel by a longitudinal septal groove; the faint pitting in the groove suggestive of the septal vasculature. d, e: Views of either end of the endocarp, illustrating the size difference between the two carpels and the pitting in the septal groove suggestive of the septal vasculature. f–k: Mastixia USNM PAL 772362. Scale bar = 1 cm. f, g, j, k: reflected light, palladium coated; h, i: micro-CT scan surface rendering. f: Lateral view of endocarp, inferred dorsal germination valve groove facing the viewer. Note irregular, rugose, longitudinal ridges. g: Lateral view of endocarp, inferred germination valve with median longitudinal groove to left. h: Lateral view of endocarp reoriented with the same longitudinal groove to the right. i: Lateral view, rotated to ventral surface. j: View of one end of the endocarp, germination valve groove up. k: Opposite end view, with prominent radial ridges and intervening grooves, germination valve groove up. l–r: Mastixia USNM PAL 772363. Scale bar = 1 cm. l: View of one face of endocarp, displaying a groove that may represent the surficial expression of the dorsal infold of a Mastixia-like germination valve. Surface badly eroded, reflected light, palladium coated. m: Opposite face of endocarp displaying extensive erosion and a central hole interpreted as feeding damage. n: Lateral view; m, n micro-CT scan surface renderings. o: A view of one end, displaying the prominent groove, reflected light, palladium coated. p: Opposite end to (o). q: View as in (o); p, q micro-CT scan surface renderings. r: Virtual transverse section showing curved locule (arrows).
Рис. 1. Раковины Mya truncata (А–Г) (Белое море) и Laternula elliptica (А'–Г') (Зал. Прюдс): А, А' – обЩий вид; Б, Г' – внутреннЯЯ поверхность левых створок; В, В' – вид хондрофора со стороны дорсального краЯ; Г, Б' – внутреннЯЯ поверхность правых створок. ОбоЗначениЯ: пК – передний край раковины; ЗК – Задний край; дК – дорсальный край; м – макушка; мщ – макушечнаЯ (умбональнаЯ) Щель; Кс – концентрическаЯ скульптура; сКп – складки периостракума; хр – хондрофор; ппЛ – поддерживаюЩаЯ пластинка; син – синус; ОмЗ – отпечаток мускула-ЗамыкателЯ. Fig. 1. Shells of Mya truncata (А–Г) (White Sea) and Laternula elliptica (А'–Г') (Prydz Bay): A, A' – general view; Б, Г' – internal view of left valves; В, В' – dorsal view on chondrophores; Г, Б' – internal view of right valves. Notes: пК – anterior margin; ЗК – posterior margin; дК – dorsal margin; м – umbo; мщ – umbonal crack; Кс – concentric sculpture; сКп – periostracal wrinkles; хр – chondrophore; ппЛ – buttress; син – sinus; ОмЗ – trace of retractor muscle. in Species of warm-water origin Laternula elliptica (King, 1832) (Mollusca: Bivalvia: Laternulidae), a widespread mollusk in recent Antarctica
Рис. 1. Раковины Mya truncata (А–Г) (Белое море) и Laternula elliptica (А'–Г') (Зал. Прюдс): А, А' – обЩий вид; Б, Г' – внутреннЯЯ поверхность левых створок; В, В' – вид хондрофора со стороны дорсального краЯ; Г, Б' – внутреннЯЯ поверхность правых створок. ОбоЗначениЯ: пК – передний край раковины; ЗК – Задний край; дК – дорсальный край; м – макушка; мщ – макушечнаЯ (умбональнаЯ) Щель; Кс – концентрическаЯ скульптура; сКп – складки периостракума; хр – хондрофор; ппЛ – поддерживаюЩаЯ пластинка; син – синус; ОмЗ – отпечаток мускула-ЗамыкателЯ. Fig. 1. Shells of Mya truncata (А–Г) (White Sea) and Laternula elliptica (А'–Г') (Prydz Bay): A, A' – general view; Б, Г' – internal view of left valves; В, В' – dorsal view on chondrophores; Г, Б' – internal view of right valves. Notes: пК – anterior margin; ЗК – posterior margin; дК – dorsal margin; м – umbo; мщ – umbonal crack; Кс – concentric sculpture; сКп – periostracal wrinkles; хр – chondrophore; ппЛ – buttress; син – sinus; ОмЗ – trace of retractor muscle.
Рис. 6. Характер фрагментации створок мидии Грея (Crenomytilus grayanus) иЗ раскопа 1. Fig. 6. Fragmentation patterns of valves of the giant mussel ((Crenomytilus grayanus) from excavation 1. in Mollusks from the shell-midden of the Telyakovskogo 2 site in southern Primorye (Yankovskaya culture), their paleoecology and role in paleoeconomy
Рис. 6. Характер фрагментации створок мидии Грея (Crenomytilus grayanus) иЗ раскопа 1. Fig. 6. Fragmentation patterns of valves of the giant mussel ((Crenomytilus grayanus) from excavation 1.
Рис. 7. Целые створки устрицы (Crassostrea gigas) иЗ раскопа 2. Fig. 7. Intact valves of the giant oyster (Crassostrea gigas) from excavation 2. in Mollusks from the shell-midden of the Telyakovskogo 2 site in southern Primorye (Yankovskaya culture), their paleoecology and role in paleoeconomy
Рис. 7. Целые створки устрицы (Crassostrea gigas) иЗ раскопа 2. Fig. 7. Intact valves of the giant oyster (Crassostrea gigas) from excavation 2.
Рис. 5. Характер повреЖдений створок анадары Броутона (Anadara broughtonii) иЗ раскопа 1. Fig. 5. Fragmentation patterns of valves of the Broughton's blood cockle (Anadara broughtonii) from excavation 1. in Mollusks from the shell-midden of the Telyakovskogo 2 site in southern Primorye (Yankovskaya culture), their paleoecology and role in paleoeconomy
Рис. 5. Характер повреЖдений створок анадары Броутона (Anadara broughtonii) иЗ раскопа 1. Fig. 5. Fragmentation patterns of valves of the Broughton's blood cockle (Anadara broughtonii) from excavation 1.
Рис. 2. ВнеШний вид глохидиев (створки открыты, вид иЗнутри): А – Beringiana chereshnevi (оЗ. Элергытгын, Чукотка); B – Berianiana compressa; C – Kunashiria japonica; D – Kunashiria haconensis. МасШтаб 40 мкм. Fig. 2. Glohidia with open valves (inside view): А – Beringiana chereshnevi (Elergytgyn Lake, Chukotka); B – Berianiana compressa; C – Kunashiria japonica; D – Kunashiria haconensis. Scale bar 40 µm. in Beringiana and Kunashiria (Bivalvia: Unionidae: Anodontinae)
Рис. 2. ВнеШний вид глохидиев (створки открыты, вид иЗнутри): А – Beringiana chereshnevi (оЗ. Элергытгын, Чукотка); B – Berianiana compressa; C – Kunashiria japonica; D – Kunashiria haconensis. МасШтаб 40 мкм. Fig. 2. Glohidia with open valves (inside view): А – Beringiana chereshnevi (Elergytgyn Lake, Chukotka); B – Berianiana compressa; C – Kunashiria japonica; D – Kunashiria haconensis. Scale bar 40 µm.
Рис. 2. A, B. Modiolus (Modiolus) kurilensis Bernard, 1983: леваЯ створка снаружи (A), иЗнутри (B). Длина раковины 26.4 мм, высота – 47.3 мм; C, D. Gari (Gobraeus) kazusensis (Yokoyama, 1922): леваЯ створка снаружи (C), иЗнутри (D). Длина раковины 71.0 мм, высота – 39.9 мм. E, F. Panomya norvegica (Spengler, 1973): леваЯ створка снаружи (E), праваЯ створка иЗнутри (F). Длина раковины 70.8 мм, высота – 44.5 мм, толЩина – 36.7 мм. Fig. 2. A, B. Modiolus (Modiolus) kurilensis Bernard, 1983: left valve (A) outside, (B) inside. Shell length 26.4 mm, height – 47.3 mm. C, D. Gari (Gobraeus) kazusensis (Yokoyama, 1922): left valve (C) outside, (D) inside. Shell length 71.0 mm, height – 39.9 mm. E, F. Panomya norvegica (Spengler, 1973): left valve (E) outside, right valve (F) inside. Shell length 70.8 mm, height – 44.5 mm, thickness – 36.7 mm. in On the species composition of marine bivalves of the Sikhote-Alin Reserve (northern Primorye, Japan/East Sea)
Рис. 2. A, B. Modiolus (Modiolus) kurilensis Bernard, 1983: леваЯ створка снаружи (A), иЗнутри (B). Длина раковины 26.4 мм, высота – 47.3 мм; C, D. Gari (Gobraeus) kazusensis (Yokoyama, 1922): леваЯ створка снаружи (C), иЗнутри (D). Длина раковины 71.0 мм, высота – 39.9 мм. E, F. Panomya norvegica (Spengler, 1973): леваЯ створка снаружи (E), праваЯ створка иЗнутри (F). Длина раковины 70.8 мм, высота – 44.5 мм, толЩина – 36.7 мм. Fig. 2. A, B. Modiolus (Modiolus) kurilensis Bernard, 1983: left valve (A) outside, (B) inside. Shell length 26.4 mm, height – 47.3 mm. C, D. Gari (Gobraeus) kazusensis (Yokoyama, 1922): left valve (C) outside, (D) inside. Shell length 71.0 mm, height – 39.9 mm. E, F. Panomya norvegica (Spengler, 1973): left valve (E) outside, right valve (F) inside. Shell length 70.8 mm, height – 44.5 mm, thickness – 36.7 mm.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.