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bioRxiv · 10.1101/049882

Activated Ras expression in eye discs with altered levels of hsrω lncRNA causes JNK-induced Dilp8 secretion and reduces post-pupal ecdysone leading to early pupal death in Drosophila

Abstract

BackgroundDilp8-mediated inhibition of ecdysone synthesis and pupation in holometabolous insects maintains developmental homeostasis through stringent control of timing and strength of moulting signals. We examined reasons for normal pupation but early pupal death observed in certain cases.\n\nResultsOver-expression of activated Ras in developing eye/wing discs inhibited Ptth expression in brain via up-regulated JNK signaling mediated Dilp8 secretion from imaginal discs, which inhibited ecdysone synthesis in prothoracic gland after pupariation, leading to death of ~25-30 Hr old pupae. Inhibition of elevated Ras signaling completely rescued early pupal death while post-pupation administration of ecdysone to organisms with elevated Ras signaling in eye discs partially rescued their early pupal death. Unlike the earlier known Dilp8 action in delaying pupation, hyperactivated Ras mediated elevation of pJNK signaling in imaginal discs caused Dilp8 secretion after pupariation. Ectopic expression of certain other transgene causing pupal lethality similarly enhanced pJNK and early pupal Dilp8. Sub-optimal ecdysone levels after 8 Hr of pupation prevented the early pupal metamorphic changes and caused organismal death.\n\nConclusionsOur results reveal early pupal stage as a novel Dilp8 mediated post-pupariation checkpoint and provide further evidence for inter-organ signaling during development, wherein a peripheral tissue influences the CNS driven endocrine function.

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Mukulika Ray, Subhash C. Lakhotia. 2016-04-23. Activated Ras expression in eye discs with altered levels of hsrω lncRNA causes JNK-induced Dilp8 secretion and reduces post-pupal ecdysone leading to early pupal death in Drosophila. https://doi.org/10.1101/049882

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