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Troutwine, B.

Publications and source records attributed to Troutwine, B..

2 recordsLinked to original sources

Temporal regulation of a spatial patterning factor in Drosophila neurogenesis

A central question in neurobiology is how the transient programs that pattern neural progenitors are translated into the enormous, stable diversity of neuronal types. Spatial and temporal cues act only briefly, yet each neuron's identity is defined and maintained for life by terminal selector transcription factors (TFs). How a neuron's developmental origin is read out into a particular selector code remains poorly understood. Some current models propose that spatial and temporal origins are inherited independently through separate selectors. We show instead that, in the Drosophila optic lobe, the same selector can be activated by different patterning axes through physically distinct enhancers, even within the same lineage. Visual system homeobox (Vsx1) spatially patterns a central neuroepithelial domain and later acts as a terminal selector in dozens of neuronal types, most originating exclusively from that domain. However, in Dm2 neurons that are produced from every domain, it is regulated not by neuroepithelial Vsx1 but by the neuroblast temporal TF BarH1, through an enhancer distinct from its domain-specific ones. Combining in vivo reporters with sequence-to-accessibility deep-learning models, we identify and disrupt the key binding sites in this enhancer, impairing its Dm2-specific activity. Reciprocally, the temporal TF Homeobrain (Hbn) acts as a terminal selector in the related neuron Mi21 independently of its neuroblast temporal window: its expression in these late-born neurons is instead placed under dorsoventral spatial control. Patterning inputs therefore need not be partitioned across separate selectors but converge combinatorially on the modular enhancers of shared ones, revealing a cis-regulatory logic that re-encodes this limited set of inputs into vast neuronal diversity.

neuroscience↗

Long-term hybridization in a karst window reveals the genetic basis of eye loss in cavefish

Eye loss is a hallmark trait of animals inhabiting perpetual darkness, yet the precise genetic variants underlying this evolutionary change remain largely unknown. The Mexican tetra (Astyanax mexicanus) provides a powerful model for dissecting the genetic basis of eye degeneration, as sighted surface fish and multiple independently evolved blind cave populations remain interfertile; yet despite decades of research and numerous QTL studies, the genetic basis of eye loss has remained unresolved at the level of specific variants. Here, we exploit a rare natural experiment in the Caballo Moro cave, where the collapse of a karst window created a partially illuminated pool inhabited by both fully eyed and completely eyeless cavefish of closely related genetic background. Whole-genome sequencing reveals a long-standing hybrid population between cave and surface lineages, enabling a dramatic refinement of the genetic architecture of eye degeneration to 203 candidate SNPs across 41 genes. Among these, we identified a nonsynonymous mutation in the lens gap-junction protein Connexin-50 (Cx50). CRISPR-based disruption of cx50 induces early eye loss in surface fish, and F2 laboratory crosses confirm genetic linkage between cx50 variants and eye size. Additional Cx50 mutations are present in independent cavefish populations and correlate with reduced eye size. Notably, variants in conserved regions of Cx50 also occur in other cave-dwelling fish and subterranean mammals, suggesting repeated evolutionary targeting of this gene. Introduction of the Caballo Moro mutation into mice causes cataracts and reduced eye and lens size, confirming its functional impact. Together, these findings identify the first SNP directly implicated in cavefish eye loss, demonstrate the power of natural hybrid populations to resolve the genetic basis of complex traits, and reveal Cx50 as a case of molecular convergence in vertebrate eye degeneration.

evolutionary biology↗