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Biology subjects

Wang, H.-V.

Publications and source records attributed to Wang, H.-V..

2 recordsLinked to original sources

Asymmetric Neurogenomic States Emerge in Winners and Losers After Social Competition

Winner and loser effects can influence future aggressive behavior following social competition, but their neurogenomic basis remains poorly understood. Using Betta splendens, we integrated behavioral analyses, whole-brain RNA sequencing, and genomic coexpression network analyses to investigate how social experiences influence enduring behavioral and molecular states. Winners showed increased attack frequency, whereas losers prolonged aggressive latency, indicating effects on distinct behavioral aspects. Winners and losers initially shared acute responses in terms of both gene expression and network coordination but subsequently diverged through outcome-specific patterns of network reorganization, despite few persistent differentially expressed genes. This divergence was asymmetric and involved multiple components: immune-related networks showed notable contrasts, with winners displaying anticipated postconflict coordination but losers instead showing discoordination, whereas neuroendocrine and purinergic networks diverged over distinct temporal scales. These findings highlight transcriptomic network-level remodeling as a potential key feature of the winner-loser effect.

animal behavior and cognition↗

De Novo Regeneration of Rete Ridges during Cetacean skin wound healing

Humans are tight-skinned mammals who typically fail to regenerate large full-thickness skin wounds, instead healing with substantial scarring and concomitant loss of function. Mechanical context is a major determinant of this outcome: elevated tissue tension or stiffness promotes fibrotic repair associated with hypertrophic or keloid scarring. Accordingly, regenerative medicine research has relied on diverse animal models to understand scar development and skin regeneration. Loose-skinned mammals exhibit greater regeneration ability. Furthermore, spiny mouse skin is significantly less stiff and associated with enhanced regenerative ability. Interestingly, this skin wound stiffness can be modulated to shift healing toward more regenerative or more fibrotic trajectories. Despite of this progress, the restoration of normal skin architecture after large-full thickness injury has not been elucidated in tight-skinned mammals. Can large full-thickness wounds regenerate with minimal scarring in tight-skinned mammals? Here we show the tight-skinned mammal Frasers Dolphin regenerates de novo a complex rete ridge architecture with associated vasculature and minimal scar following large full-thickness wound healing. Counterintuitively, this skin regeneration occurs in an aqueous, high-shear stress and high-tension environment. Complete rete ridge regeneration in tight-skinned mammals has not been documented and not observed in humans except in utero. This unique ability to rebuild elaborate rete ridges under tension is an opportunity to uncover molecular, cellular, and tissue-level mechanisms that enable regenerative wound healing in a mechanical regime typically associated with fibrosis.

pathology↗