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Orozco-Borunda, D. H.

Publications and source records attributed to Orozco-Borunda, D. H..

2 recordsLinked to original sources

Spatial organization of assemblies of protein complexes by colocalization analysis

The precise localization of multiple species of proteins and protein complexes organized in nanodomains and large, non-periodic protein assemblies has been shown to be important for cellular function. Cryo-electron tomography is uniquely suited to visualize such assemblies in situ, with single nanometer precision, together with their cellular environment. Here we present in detail and characterize a parameter-free, second order point pattern analysis method that is applicable to cellular cryo-electron tomograms, and provides quantitative and statistical characterization of the colocalization between two or more distinct groups of complexes, such as those that comprise protein assemblies. By numerical and analytical calculations, we show that this colocalization method can correctly detect and distinguish different forms of point pattern interactions between complexes, and therefore identify specific types of spatial distribution of complexes, which result from multiple biochemical interactions and diffusion in cellular environments. We also present image processing tasks that precede the colocalization to facilitate its applications to cellular junctions and other biological systems.

biophysics↗

Direct cryo-ET detection of native SNARE and Munc13 protein bridges using AI classification and preprocessing

Synaptic transmission requires Munc13 and SNARE proteins for synaptic vesicle priming and fusion. Cryo-electron tomography detected multiple types of Munc13- or SNARE-dependent dependent molecular bridges that tether synaptic vesicles to the presynaptic active zone plasma membrane. To integrate the molecular scenario with structural observations, we obtained de novo, in situ cryo-electron tomography averages of native, mammalian SNARE- and Munc13-dependent tethers. These provide direct evidence that Munc13 and a complex comprising SNARE proteins link synaptic vesicles to the active zone membrane. Furthermore, we determined the plausibility of different molecular compositions of tethers, placed constraints on their conformations and positioning, and proposed the existence of a complex downstream of Munc13 and upstream of SNARE complex formation. Because the detection and subtomogram averaging of membrane-bridging complexes is complicated by the presence of two lipid membranes and multiple protein species and conformations, we developed preprocessing methods and feature-based AI classifiers that outperformed standard methods.

neuroscience↗