Structural characteristics of the epidermis in marine and freshwater finless porpoises adapted to distinct osmotic environments.

Fuente: PubMed
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Autores principales: Zhou, Haojie, Zhang, Changqun, Tang, Bin, Zhang, Haobo, Zheng, Jinsong, Wang, Kexiong, He, Dekui, Hao, Yujiang
Formato: Artículo científico
Lenguaje:en
Publicado: Current zoology 2025
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author Zhou, Haojie
Zhang, Changqun
Tang, Bin
Zhang, Haobo
Zheng, Jinsong
Wang, Kexiong
He, Dekui
Hao, Yujiang
author_facet Zhou, Haojie
Zhang, Changqun
Tang, Bin
Zhang, Haobo
Zheng, Jinsong
Wang, Kexiong
He, Dekui
Hao, Yujiang
Zhou, Haojie
Zhang, Changqun
Tang, Bin
Zhang, Haobo
Zheng, Jinsong
Wang, Kexiong
He, Dekui
Hao, Yujiang
collection PubMed - marine biology
contents Structural characteristics of the epidermis in marine and freshwater finless porpoises adapted to distinct osmotic environments. Zhou, Haojie Zhang, Changqun Tang, Bin Zhang, Haobo Zheng, Jinsong Wang, Kexiong He, Dekui Hao, Yujiang The Yangtze finless porpoise (, Pilleri & Gihr, 1972; YFP) is an exclusively freshwater cetacean species inhabiting the Yangtze River and its connecting large lakes. As the primary line of defense in maintaining physiological equilibrium, the epidermis of the porpoise is expected to have undergone structural adaptations due to the shift from the marine to the freshwater environment. This study compared the microstructural and ultrastructural features of the epidermis of YFP and its marine counterpart, the East Asian finless porpoise (, Pilleri & Gihr, 1975; EAFP). Microscopic structural observations and statistical analyses of the epidermal thickness demonstrated no significant differences in the cell structure or distribution between the two porpoise species. However, the epidermis of the YFP contained more abundant stratum basale cells. The outermost lipid stratum corneum exhibited a thinner cell layer with wider neutral lipid droplets to resist the passive entry of water molecules in the hypotonic environment. In contrast, for the EAFP, a more uniformly arranged stratum basale in the epidermis led to denser keratin fibers and robust desmosomes within each epidermal layer at the ultrastructural level. This tight arrangement of cells can reduce transepidermal water loss (TEWL) in an environment with higher osmotic pressure. In conclusion, the 2 finless porpoise species appear to employ different epidermal mechanisms to adapt to their distinct osmotic environments. The YFP appears to possess a "lipid waterproofing" epidermal structure, while the EAFP possesses a "thick and compact water-retaining" epidermal structure to cope with potential water loss.
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institution PubMed
language en
publishDate 2025
publisher Current zoology
record_format pubmed
spellingShingle Structural characteristics of the epidermis in marine and freshwater finless porpoises adapted to distinct osmotic environments.
Zhou, Haojie
Zhang, Changqun
Tang, Bin
Zhang, Haobo
Zheng, Jinsong
Wang, Kexiong
He, Dekui
Hao, Yujiang
Structural characteristics of the epidermis in marine and freshwater finless porpoises adapted to distinct osmotic environments. Zhou, Haojie Zhang, Changqun Tang, Bin Zhang, Haobo Zheng, Jinsong Wang, Kexiong He, Dekui Hao, Yujiang The Yangtze finless porpoise (, Pilleri & Gihr, 1972; YFP) is an exclusively freshwater cetacean species inhabiting the Yangtze River and its connecting large lakes. As the primary line of defense in maintaining physiological equilibrium, the epidermis of the porpoise is expected to have undergone structural adaptations due to the shift from the marine to the freshwater environment. This study compared the microstructural and ultrastructural features of the epidermis of YFP and its marine counterpart, the East Asian finless porpoise (, Pilleri & Gihr, 1975; EAFP). Microscopic structural observations and statistical analyses of the epidermal thickness demonstrated no significant differences in the cell structure or distribution between the two porpoise species. However, the epidermis of the YFP contained more abundant stratum basale cells. The outermost lipid stratum corneum exhibited a thinner cell layer with wider neutral lipid droplets to resist the passive entry of water molecules in the hypotonic environment. In contrast, for the EAFP, a more uniformly arranged stratum basale in the epidermis led to denser keratin fibers and robust desmosomes within each epidermal layer at the ultrastructural level. This tight arrangement of cells can reduce transepidermal water loss (TEWL) in an environment with higher osmotic pressure. In conclusion, the 2 finless porpoise species appear to employ different epidermal mechanisms to adapt to their distinct osmotic environments. The YFP appears to possess a "lipid waterproofing" epidermal structure, while the EAFP possesses a "thick and compact water-retaining" epidermal structure to cope with potential water loss.
title Structural characteristics of the epidermis in marine and freshwater finless porpoises adapted to distinct osmotic environments.
url https://pubmed.ncbi.nlm.nih.gov/40620585/