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Ramadan, Y.

Publications and source records attributed to Ramadan, Y..

2 recordsLinked to original sources

Terminal selector and subtype selector function across 200 million years of nematode evolution

The evolution of brains is subject to investigation in many different animal groups, each offering unique advantages to advance our understanding of the cellular, molecular and regulatory substrates of evolutionary change. Here, we use two nematode species, C. elegans and P. pacificus, separated by more than 200 million years of evolution to explore how neuronal cell types and the regulatory programs instructing the identity of these cell types have evolved over time. Using gene expression pattern analysis, we compare the differentiation programs of over half of all nematode neuron classes. To explore how the gene regulatory architecture of neuronal differentiation programs evolves, we apply our deep understanding of neuronal differentiation programs, controlled by terminal selectors and subtype selectors in C. elegans. Through mutant analysis of orthologous P. pacificus regulatory factors, we elucidate patterns of conservation and novelties over such substantial evolutionary distance. We discovered striking similarities in terminal selector expression and activities throughout the nervous system but also observed that terminal selectors can acquire novel sites of expression and distinct regulatory capabilities, manifested by changes in effector gene expression and, hence, neuronal phenotypes. Our mutant analysis argues for a buffering of terminal selector function and for an evolutionary lability of differences in closely related neuronal subtypes. Taken together, our analysis reveals molecular substrates of evolutionary change in nervous systems.

neuroscience↗

A conserved C. elegans zinc finger-homeodomain protein, ZFH-2, continuously required for structural integrity and function of alimentary tract and gonad

An unusually large transcription factor arose at the base of bilaterian evolution through domain shuffling that recombined many copies of two distinct DNA binding domains, C2H2-type zinc fingers and homeodomains. The function of this deeply conserved type of protein remains poorly characterized. We describe here the complete and complex expression pattern of its sole C. elegans representative, ZFH-2, throughout development and adulthood. We show that animals lacking this protein display defects in proper alimentary tract formation and starve to death in the first larval stage with an apparent inability to ingest food. Conditional removal of ZFH-2 at post-developmental stages reveals a continuous function of this protein in enabling food ingestion and demonstrates additional essential functions for the formation of other, postembryonically generated tubular structures. Even though ZFH-2 is broadly expressed throughout the nervous system, we detected no obvious defects in neuronal development or function in zfh-2 null mutants. Genome-engineered alleles indicate that while a large part of the protein is dispensable, at least a subset of the homeodomains are critical determinants for the essential functions of this protein.

developmental biology↗