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Multisite Threonine Phosphorylation in the SPT5 C‑Terminal Region 1 Enables Sequence-Dependent Regulation without Global Structural Remodeling

Aug 2026 · Journal of Physical Chemistry B · Vol 130, pp. 8409 - 8422 · 0 citations · 64 references
Medicine

TL;DR

This work establishes that multisite phosphorylation of the SPT5 CTR1 domain modulates a heterogeneous interaction landscape shaped by sequence context, and emphasizes the nontrivial difference between serine and threonine phosphorylation as a mechanism to regulate disordered protein structure–function relationships.

Abstract

Phosphorylation of intrinsically disordered regions (IDRs) is widely viewed as a mechanism for encoding regulatory information through structural transitions, as exemplified by the RNA polymerase II C-terminal domain (CTD), where phosphorylation induces local conformational changes such as proline isomerization. However, whether this paradigm extends to other disordered regulatory domains remains unclear. The C-terminal repeat region (CTR) of SPT5, a key cofactor in transcription elongation, contains multiple Thr–Pro motifs that are phosphorylated by P-TEFb, but the structural and mechanistic consequences of this modification have not been defined. Here, we combine NMR spectroscopy, small-angle X-ray scattering (SAXS), mass spectrometry, and molecular simulations to characterize the effects of multisite threonine phosphorylation on the SPT5 CTR1 domain. NMR analysis reveals that, in contrast to the RNA polymerase II CTD, phosphorylation does not induce detectable proline isomerization. Molecular simulations suggest this resistance arises because phosphothreonine forms an intramolecular hydrogen bond that restricts the backbone flexibility required for isomerization. SAXS measurements further show that hyperphosphorylation does not alter the global dimensions of the CTR1 ensemble, in agreement with predictions from polyampholyte polymer models. Notably, mass spectrometry and mutational analysis demonstrate that phosphorylation is strongly influenced by local sequence context, with specific residues modulating kinase selectivity. Together, these findings establish that multisite phosphorylation of the SPT5 CTR1 domain modulates a heterogeneous interaction landscape shaped by sequence context. More broadly, this work emphasizes the nontrivial difference between serine and threonine phosphorylation as a mechanism to regulate disordered protein structure–function relationships.

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