The central problem this work addresses is how cells communicate their fitness and recognize aberrant fitness differences that might endanger growing tissues. Much evidence indicates that the recognition of fitness disparities elicits interactions that prevent the weaker cells from contributing to the animal, promoting optimal tissue and organismal fitness. Cell competition is a mechanism that facilitates this homeostatic process, and is initiated upon recognition of cells perceived as less fit by their more robust neighbors. Examples of competitive behavior between cells of different fitness are numerous, but the best studied those induced by reduced ribosomal proteins (Rp), or reduced or enhanced expression of the transcription factor Myc. The developing Drosophila wing is the critical paradigm for study of cell competition - as a model system it is unsurpassed for mosaic studies of cell-cell interactions in living animals, and offers unparalleled genetic and molecular toolkits. We recently discovered that communication between the ?winner? and ?loser? cells is mediated by a novel signaling pathway consisting of components co-opted from the highly conserved innate immune response pathways. Our long-term goal is to explore both proximate (how does this work) and ultimate (what is it for) questions about cell competition. In this proposal, we focus on three major quests: 1), to further explore the mechanism by which signal activation is controlled and restricted to only nearby ?loser? cells; 2) to delineate the endogenous role of cell competition during normal animal physiology; and 3) to investigate the existence of a general mechanism of cell fitness sensing. !

Public Health Relevance

Optimal tissue fitness and animal health requires cells to cooperate with each other for normal tissue function. The long-term goal of our studies is to define the molecular mechanisms of cell competition, a process of cell fitness comparison, in the context of tissue growth and overall animal physiology, which should provide new approaches for preventing developmental defects and promoting optimal health. ! ! !

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Unknown (R35)
Project #
5R35GM131871-02
Application #
9903400
Study Section
Special Emphasis Panel (ZRG1)
Program Officer
Melillo, Amanda A
Project Start
2019-04-01
Project End
2024-03-31
Budget Start
2020-04-01
Budget End
2021-03-31
Support Year
2
Fiscal Year
2020
Total Cost
Indirect Cost
Name
Columbia University (N.Y.)
Department
Genetics
Type
Schools of Medicine
DUNS #
621889815
City
New York
State
NY
Country
United States
Zip Code
10032