bioRxiv Science⌕ Search

Biology subjects

Perez-Mockus, G.

Publications and source records attributed to Perez-Mockus, G..

2 recordsLinked to original sources

Growth-induced physiological hypoxia correlates with growth deceleration during normal development

Growth deceleration is a universal feature of growth during development: most organs and tissues slow down their growth rate much before growth termination. Using transcriptomics analysis, we show that during their two-day period of growth deceleration, wing imaginal discs of Drosophila undergo a progressive metabolic shift away from oxidative phosphorylation and towards glycolysis. We then develop an ultra-sensitive reporter HIF-1 activity, which reveals that imaginal discs become increasingly hypoxic during development in normoxic conditions, suggesting that limiting oxygen supply could underlie growth deceleration. Growth is energetically expensive and thus expected to contribute, indirectly, to oxygen consumption. Indeed, excess TOR signalling, a key stimulator of growth, triggers hypoxia locally and systemically, highlighting the need to rein in growth when oxygen becomes limiting. This is achieved by a negative feedback loop whereby the classic TOR-inhibitory function of HIF-1 is deployed in response to developmental hypoxia. The absence of Sima/HIF-1 leads to cellular stress, which is alleviated by reduced TOR signalling. Conversely, a small increase in oxygen supply reduces the stress induced by excess TOR activity. We conclude that mild hypoxia is a normal feature of organ development and that Sima/HIF-1 prevents growth-induced oxygen demand from exceeding supply.

developmental biology↗

The ecdysone receptor promotes or suppresses proliferation according toligand level

Steroid hormones control various cellular activities in a context-dependent manner. For example, ecdysone, which acts through a type II nuclear receptor, has seemingly opposite effects in Drosophila wing precursors, promoting proliferation during larval stages, and triggering proliferation arrest at pupariation. We find that wing precursors proliferate normally in the complete absence of the ecdysone receptor (EcR), whether ecdysone is present or not, suggesting that ecdysone overrides a default antiproliferative activity of the receptor. By contrast, termination of proliferation by high concentration of 20E at the end of larval life involves conventional gene regulation by the ligand-receptor complex. The switch from one mode of regulation to the other is determined by ligand level, as measured with a calibrated EcR transcriptional reporter and ex vivo proliferation assays. Accordingly, RNA Seq analysis uncovers distinct transcriptional responses to different doses of ecdysone. Some genes are only activated at high doses (high threshold targets) and likely to comprise genes that stop proliferation at pupariation, when ecdysone titres are high. We find that other target genes respond to all physiological concentrations of ecdysone. Some of these genes are known to promote proliferation and could therefore contribute to the pro-proliferation activity of low-level ecdysone. Finally, we show mathematically and with synthetic reporters that relatively simple combinations of regulatory elements can recapitulate the behaviour of both types of target genes.

developmental biology↗