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A conserved dimerization element is required for protein kinase activation by trans-autophosphorylation

Botterbusch, S.; Huso, V. L.; Weingartner, K. A.; Tryggvason, G.; Tripp, K. W.; Green, R.; Kavran, J. M.

2026-05-25 biochemistry
10.64898/2026.05.22.726961 bioRxiv
Show abstract

Trans-autophosphorylation is the most common mode of protein kinase activation and involves two copies of the same kinase dimerizing so that one can phosphorylate the activation loop of the other. The diversity among structures of trans-autophosphorylation dimers supported the view that each kinase evolved a unique mode of recognition. We screened all human kinase crystal structures and identified an expanded set of dimers compatible with trans-autophosphorylation (655 dimers from 143 kinases). These dimers share no conserved structural arrangement, but 85% bury the same helix, G, at the dimer interface. We validate G-mediated dimerization by mutagenesis in kinases from each group of the kinome activated by trans-autophosphorylation. G substitution impaired or abolished activation of full-length proteins, in cells, in every case. In purified kinase domains, G substitution disrupted dimerization and autophosphorylation. These data establish that dimerization during trans-autophosphorylation is conserved and is mediated by a common structural element that, surprisingly, does not impose a specific arrangement of the two kinase domains relative to each other. G is the least conserved element in the kinase fold, yet is required for activation across both the human kinome and other species, suggesting an ancestral function of the kinase fold. Significance StatementProtein kinases are the largest enzyme family in the human genome and common pharmaceutical targets. Most are activated by trans-autophosphorylation, during which two copies of the same kinase dimerize and one phosphorylates the activation loop of the other. How this is achieved remains poorly understood. We find dimerization during activation is conserved, but in an unexpected way. An unbiased structural screen of all human kinase crystal structures reveals kinases across the kinome bury the same helix, G, at the dimer interface. G-mediated dimerization extends to other species suggesting an ancestral function of the kinase fold. Substitution of G disrupts activation of every kinase tested. Despite this conservation, G-mediated dimers share no common arrangement, representing an unusual mode of protein-protein interaction.

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