Search bioRxiv⌕ Search

Biology subjects

Li, E. Y.

Publications and source records attributed to Li, E. Y..

2 recordsLinked to original sources

Two transcriptional cascades orchestrate cockroach leg regeneration

The mystery of appendage regeneration has fascinated humans for centuries, while the regulatory mechanisms remain unclear. In this study, a transcriptional landscape of regenerating leg was established in the American cockroach, Periplaneta americana, an ideal model for appendage regeneration with remarkable regeneration capacity. Through a large-scale in vivo screening, we identified multiple signaling pathways and transcription factors (TFs) controlling leg regeneration. Specifically, zfh-2 and bowl, which have not been previously implicated in appendage regeneration, contributes to blastema proliferation and morphogenesis in two novel transcriptional cascades BMP/JAK-STAT-zfh-2-bab1/B-H2/Lim1 and Notch-drm/bowl-bab1. Notably, zfh-2 was found working as a direct target of BMP signaling to promote cell proliferation in the blastema. These mechanisms might be conserved in the appendage regeneration of vertebrates from an evolutionary perspective. Overall, our findings reveal that two crucial transcriptional cascades orchestrate distinct cockroach leg regeneration processes, significantly advancing the comprehension of molecular mechanism in appendage regeneration.

developmental biology↗

Royal knifefish generate powerful suction feeding through large neurocranial elevation and high muscle power output

Suction feeding in ray-finned fishes involves powerful buccal cavity expansion to accelerate water and food into the mouth. Previous XROMM studies in largemouth bass (Micropterus salmoides), bluegill sunfish (Lepomis macrochirus), and channel catfish (Ictalurus punctatus) have shown that more than 90% of suction power in high performance strikes comes from the axial musculature. Thus, the shape of the axial muscles and skeleton may impact suction feeding mechanics. Royal knifefish (Chitala blanci) have an unusual postcranial morphology, with a ventrally flexed vertebral column and relatively large mass of epaxial muscle. Based on their body shape, we hypothesized that royal knifefish would generate high power strikes by utilizing large neurocranial elevation, vertebral column extension, and epaxial shortening. As predicted, C. blanci generated high suction expansion power compared to the other three species studied to date (up to 160 W), which was achieved by increasing both the rate of volume change and the intraoral subambient pressure. The large epaxial muscle (25% of body mass) shortened at high velocities to produce large neurocranial elevation and vertebral extension (up to 41 deg, combined), as well as high muscle mass-specific power (up to 800 W kg-1). For the highest power strikes, axial muscles generated 95% of the power, and 64% of the axial muscle mass consisted of the epaxial muscles. The epaxial-dominated suction expansion of royal knifefish supports our hypothesis that postcranial morphology may be a strong predictor of suction feeding biomechanics. SUMMARY STATEMENTRoyal knifefish rely on their distinct postcranial morphology--with a curved vertebral column and large dorsal body muscles--to produce large neurocranial elevation and powerful suction feeding.

zoology↗