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August 19, 20250 citationsOpen Access

Expression dynamics and functional characterization of the pigmented and non-diapausing egg gene (pnd) and pnd-2, responsible for the initiation of embryonic diapause in the silkworm, Bombyx mori

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HYHayato YamadaSKShouhei KiharaTNTeruyuki Niimi

Key Points

  • Embryonic diapause in Bombyx mori is triggered by the action of pnd and pnd-2 genes, which are critical initiators downstream of the diapause hormone.
  • RNA interference targeting pnd or pnd-2 prevents diapause initiation, uncovering their essential regulatory roles in this process.
  • Strong upregulation of pnd occurs in response to diapause hormone signals, indicating a direct interaction in embryonic development.
  • Understanding these genes can shed light on the molecular mechanisms of diapause, potentially informing broader ecological and evolutionary studies.

Abstract

Diapause in insects is a developmental arrest that serves as an adaptation to severe environmental conditions. In the silkworm Bombyx mori, embryonic diapause in the next generation is maternally induced by the diapause hormone (DH). However, the downstream factors responsible for initiating diapause have remained unidentified. The pnd and pnd-2 mutants produce pigmented and non-diapausing eggs despite intact DH signaling, indicating that the pnd and pnd-2 genes act downstream as potential initiators of diapause. Here, we analyzed their expression dynamics and functions. Expression analyses showed that pnd was strongly upregulated in diapause-destined eggs in a DH-signal-dependent manner and was suppressed by HCl treatment that prevents diapause initiation. In contrast, pnd-2 exhibited a transient expression peak independent of DH-signal and was unaffected by HCl treatment. RNAi-mediated knockdown of either gene inhibited the diapause initiation, and injection of pnd mRNA into non-diapause-destined eggs induced a diapause-like state in embryos. These findings demonstrate that pnd and pnd-2 are required downstream of the DH-signal to initiate diapause, providing key insights into the molecular mechanism underlying embryonic diapause induction in B. mori.

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Cite This Study

Yamada et al. (2025) studied this question.

synapsesocial.com/papers/68af494dad7bf08b1ead4c6fhttps://doi.org/10.1101/2025.08.17.667111
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