Completed Cells, Biochemistry & Physiology Genetics & Molecular Biology

From patterning signals to growth and back

In plain English

AI plain-English summary

A fruit fly’s wing grows to exactly the right size and shape because its cells receive and integrate multiple signals at once—but how those signals are combined remains unknown. This project tackles a fundamental gap in developmental biology: how the signals that lay out a body plan (patterning signals) also tell tissues when to stop growing. Researchers know that molecules like Wingless and Dpp control both pattern and growth, but the molecular links between these signals and the cell’s growth machinery are missing. The team will build optogenetic and temperature-sensitive tools to switch these signals on and off in fly wing discs with unprecedented speed, bypassing the slow pace of traditional genetics. They will then hunt for the immediate early genes that translate patterning signals into growth instructions, and test whether growth rate itself feeds back to alter signal activity—a possible mechanism for scaling body parts to size. This is fundamental science. It will not produce a drug or a device. But understanding how tissues coordinate growth and pattern is essential for any future effort to regenerate organs, correct birth defects, or engineer artificial tissues. Similar work on fly development has already revealed the signalling pathways behind human cancers and congenital disorders.

View original technical description
During development, pattern formation and tissue growth must be coordinated, suggesting that feedback mechanisms exist between these two processes. Indeed, in some systems, the signals that control pattern formation have been found to be required for growth. Tissue growth is also regulated by dedicated - local and systemic - signals that convey information about tissue architecture and nutritional status. We propose to investigate how these pro-growth signals are integrated. As a first step, we will uncover how patterning signals link molecularly with the cellular growth control machinery. As a model system, we will use Drosophila wing imaginal discs. To overcome the delays associated with traditional genetic analysis, we will develop optogenetic and thermo-sensitive means of controlling signal transduction, focusing on Wingless, a Wnt, and Dpp, a TGF-ß. These tools will be used to identify the patterning signals’ immediate early targets that promote growth, perhaps through regulation of known transducers of systemic signals. In addition, we will investigate whether the activity of patterning signals might be affected by the growth rate, as this could account for scaling. These experiments will uncover, in molecular detail, how various signals are integrated to ensure that tissues grow in a timely and proportionate manner.

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Researchers

Jean-Paul Vincent (EPMC Awardee)

Related Research

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3D Multiscale Mechanical Modelling of Tissue Growth.
Developmental control of animal size: mechanisms and evolution

Original classification

Investigator Award in Science

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