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Rehan, A.

Publications and source records attributed to Rehan, A..

3 recordsLinked to original sources

Parallelization of single-molecule binding kinetic measurements via protein barcode sequencing

Screening protein variants for desired functions has long relied on coupling of genotype (gene sequence) to phenotype (protein function), limiting the use of powerful single-molecule (SM) techniques. Here, we introduce a scalable SM screening method that bypasses this constraint by linking SM functional analysis to protein identity through SM protein sequencing. Protein variants are tagged with unique C-terminal peptide barcodes and loaded onto a semiconductor chip containing millions of nanowells. Protein-ligand interactions are monitored in real time at the SM level, and a dye-cycling strategy extends the measurable dynamic range, enabling quantification of slow dissociation rates typical of high-affinity interactions. After functional analysis, each protein molecule is identified by sequencing its barcode. We apply this method to 20 barcoded nanobodies spanning over 1,000-fold in affinity, yielding results consistent with published values and individual SM measurements. Our approach should accelerate protein engineering by enabling rapid, multiplexed SM screening of protein libraries.

biochemistry↗

Gradients of Recognition Molecules Shape Synaptic Specificity of a Visuomotor Transformation

Converting sensory information into motor commands is fundamental to most of our actions. In Drosophila, visuomotor transformations are mediated by Visual Projection Neurons (VPNs). These neurons convert object location and motion into directional behaviors downstream through a synaptic gradient mechanism. However, the molecular origins of such graded connectivity remain unknown. We addressed this question in a VPN cell type called LPLC2, which integrates looming motion and transforms it into an escape response through two parallel dorsoventral synaptic gradients at its inputs and outputs. We identified two corresponding dorsoventral expression gradients of cell recognition molecules within the LPLC2 population that regulate this synaptic connectivity. Dpr13 determines synaptic outputs of LPLC2 axons by interacting with its binding partner DIP-{varepsilon} expressed in the Giant Fiber, a neuron that mediates escape. Similarly, beat-VI regulates synaptic inputs onto LPLC2 dendrites by interacting with Side-II expressed in upstream motion-detecting neurons. Behavioral, physiological, and molecular experiments demonstrate that these coordinated molecular gradients control differential synaptic connectivity, enabling the accurate transformation of visual features into motor commands. As within-neuronal-type variation in gene expression is also observed in the mammalian brain, graded expression of cell recognition molecules may represent a common mechanism underlying synaptic specificity.

neuroscience↗

Neuronal identity control at the resolution of a single transcription factor isoform

The brain exhibits remarkable neuronal diversity which is critical for its functional integrity. From the sheer number of cell types emerging from extensive transcriptional, morphological, and connectome datasets, the question arises of how the brain is capable of generating so many unique identities. Terminal selectors are transcription factors hypothesized to determine the final identity characteristics in post-mitotic cells. Which transcription factors function as terminal selectors and the level of control they exert over different terminal characteristics are not well defined. Here, we establish a novel role for the transcription factor broad as a terminal selector in Drosophila melanogaster. We capitalize on existing large sequencing and connectomics datasets and employ a comprehensive characterization of terminal characteristics including Perturb-seq and whole-cell electrophysiology. We find a single isoform broad-z4 serves as the switch between the identity of two visual projection neurons LPLC1 and LPLC2. Broad-z4 is natively expressed in LPLC1, and is capable of transforming the transcriptome, morphology, and functional connectivity of LPLC2 cells into LPLC1 cells when perturbed. Our comprehensive work establishes a single isoform as the smallest unit underlying an identity switch, which may serve as a conserved strategy replicated across developmental programs.

neuroscience↗