Genetics, Vol. 166, 1281-1289, March 2004, Copyright © 2004

Differential Effects of Drosophila Mastermind on Asymmetric Cell Fate Specification and Neuroblast Formation

Barry Yedvobnicka, Anumeha Kumara, Padmashree Chaudhurya, Jonathan Opraseuthb, Nathan Mortimerb, and Krishna Moorthi Bhatb
a Department of Biology, Emory University School of Medicine, Atlanta, Georgia 30322
b Department of Cell Biology, Emory University School of Medicine, Atlanta, Georgia 30322

Corresponding author: Krishna Moorthi Bhat, 413 Whitehead Biomedical Research Bldg., 415 Michael St., Emory University School of Medicine, Atlanta, GA 30322., kbhat{at}cellbio.emory.edu (E-mail)

Communicating editor: R. S. HAWLEY

During neurogenesis in the ventral nerve cord of the Drosophila embryo, Notch signaling participates in the pathway that mediates asymmetric fate specification to daughters of secondary neuronal precursor cells. In the NB4-2 -> GMC-1 -> RP2/sib lineage, a well-studied neuronal lineage in the ventral nerve cord, Notch signaling specifies sib fate to one of the daughter cells of GMC-1. Notch mediates this process via Mastermind (Mam). Loss of function for mam, similar to loss of function for Notch, results in GMC-1 symmetrically dividing to generate two RP2 neurons. Loss of function for mam also results in a severe neurogenic phenotype. In this study, we have undertaken a functional analysis of the Mam protein. We show that while ectopic expression of a truncated Mam protein induces a dominant-negative neurogenic phenotype, it has no effect on asymmetric fate specification. This truncated Mam protein rescues the loss of asymmetric specification phenotype in mam in an allele-specific manner. We also show an interallelic complementation of loss-of-asymmetry defect. Our results suggest that Mam proteins might associate during the asymmetric specification of cell fates and that the N-terminal region of the protein plays a role in this process.





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