bioRxiv · 10.1101/2022.09.09.507289
Branch point evolution controls species-specific alternative splicing and regulates long term potentiation
Abstract
Regulation and functionality of species-specific alternative splicing has remained enigmatic to the present date. Calcium/calmodulin-dependent protein kinase II{beta} (CaMKII{beta}) is expressed in several splice variants and plays a key role in learning and memory. Here, we identify and characterize several primate-specific CAMK2B splice isoforms, which show altered kinetic properties and changes in substrate specificity. Furthermore, we demonstrate that primate-specific Camk2{beta} alternative splicing is achieved through branch point weakening during evolution. We show that reducing branch point and splice site strengths during evolution globally renders constitutive exons alternative, thus providing a paradigm for cis-directed species-specific alternative splicing regulation. Using CRISPR/Cas9 we introduced a weaker human branch point into the mouse genome, resulting in human-like CAMK2B splicing in the brain of mutant mice. We observe a strong impairment of long-term potentiation in CA3-CA1 synapses of mutant mice, thus connecting branch point-controlled, species-specific alternative splicing with a fundamental function in learning and memory.
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Franz, A., Weber, A. I., Preussner, M., Dimos, N., Stumpf, A., Ji, Y., Velasquez, L. M., Voigt, A., Schulz, F., Neumann, A., Kuropka, B., Kühn, R., Urlaub, H., Schmitz, D., Wahl, M., Heyd, F.. 2022-09-11. Branch point evolution controls species-specific alternative splicing and regulates long term potentiation. https://doi.org/10.1101/2022.09.09.507289
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