TY - JOUR
T1 - Axon regrowth during development and regeneration following injury share molecular mechanisms
AU - Yaniv, Shiri P.
AU - Issman-Zecharya, Noa
AU - Oren-Suissa, Meital
AU - Podbilewicz, Benjamin
AU - Schuldiner, Oren
N1 - Funding Information: We are grateful to S. Graff, M. Shneyder, N. Strasser, and J.M. Levy for technical assistance. We thank T. Schwarz, B. Shilo, E. Peles, M. Schuldiner, A. Yaron, L. Luo, and the members of the Schuldiner laboratory for critical reading and discussions, T. Lee, B. Wightman, S. Robinow, the Bloomington Stock Center, and the Developmental Studies Hybridoma Bank (DSHB) for fly stocks, nematode strains, plasmids, and antibodies. We are indebted to L. Luo for his mentorship and support in whose laboratory this work was initiated with the support of National Institutes of Health grant R37-NS041044. S.P.Y was supported by the Dean of Faculty Postdoctoral Fellowship at the Weizmann Institute. This work was funded by the European Commission, grant FP7-PEOPLE-2008-IRG-239248, Israel Science Foundation grant (ISF) 686/11, and the Candice Appleton Family trust to O.S. and ISF grant 826/08 and BIKURA/FIRST grant 1542/07 to B.P. All the images except Figure S6 were obtained using a Zeiss LSM710 confocal microscope that was purchased with the help of the Adelis Foundation. O.S. is incumbent of the Aser Rothstein Career Development Chair.
PY - 2012/10/9
Y1 - 2012/10/9
N2 - Background: The molecular mechanisms that determine axonal growth potential are poorly understood. Intrinsic growth potential decreases with age, and thus one strategy to identify molecular pathways controlling intrinsic growth potential is by studying developing young neurons. The programmed and stereotypic remodeling of Drosophila mushroom body (MB) neurons during metamorphosis offers a unique opportunity to uncover such mechanisms. Despite emerging insights into MB γ-neuron axon pruning, nothing is known about the ensuing axon re-extension. Results: Using mosaic loss of function, we found that the nuclear receptor UNF (Nr2e3) is cell autonomously required for the re-extension of MB γ-axons following pruning, but not for the initial growth or guidance of any MB neuron type. We found that UNF promotes this process of developmental axon regrowth via the TOR pathway as well as a late axon guidance program via an unknown mechanism. We have thus uncovered a novel developmental program of axon regrowth that is cell autonomously regulated by the UNF nuclear receptor and the TOR pathway. Conclusions: Our results suggest that UNF activates neuronal re-extension during development. Taken together, we show that axon growth during developmental remodeling is mechanistically distinct from initial axon outgrowth. Due to the involvement of the TOR pathway in axon regeneration following injury, our results also suggests that developmental regrowth shares common molecular mechanisms with regeneration following injury.
AB - Background: The molecular mechanisms that determine axonal growth potential are poorly understood. Intrinsic growth potential decreases with age, and thus one strategy to identify molecular pathways controlling intrinsic growth potential is by studying developing young neurons. The programmed and stereotypic remodeling of Drosophila mushroom body (MB) neurons during metamorphosis offers a unique opportunity to uncover such mechanisms. Despite emerging insights into MB γ-neuron axon pruning, nothing is known about the ensuing axon re-extension. Results: Using mosaic loss of function, we found that the nuclear receptor UNF (Nr2e3) is cell autonomously required for the re-extension of MB γ-axons following pruning, but not for the initial growth or guidance of any MB neuron type. We found that UNF promotes this process of developmental axon regrowth via the TOR pathway as well as a late axon guidance program via an unknown mechanism. We have thus uncovered a novel developmental program of axon regrowth that is cell autonomously regulated by the UNF nuclear receptor and the TOR pathway. Conclusions: Our results suggest that UNF activates neuronal re-extension during development. Taken together, we show that axon growth during developmental remodeling is mechanistically distinct from initial axon outgrowth. Due to the involvement of the TOR pathway in axon regeneration following injury, our results also suggests that developmental regrowth shares common molecular mechanisms with regeneration following injury.
UR - https://www.scopus.com/pages/publications/84867403943
U2 - 10.1016/j.cub.2012.07.044
DO - 10.1016/j.cub.2012.07.044
M3 - Article
SN - 0960-9822
VL - 22
SP - 1774
EP - 1782
JO - Current Biology
JF - Current Biology
IS - 19
ER -