Quantitative NMR analysis of the kinetics of prenucleation oligomerization and aggregation of pathogenic huntingtin exon-1 protein.

Ceccon, Alberto; Tugarinov, Vitali; Torricella, Francesco; Clore, G Marius · Proc Natl Acad Sci U S A · 2022

basic_science · Level V

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Abstract

The N-terminal region of the huntingtin protein, encoded by exon-1 (htt<sup>ex1</sup>) and containing an expanded polyglutamine tract, forms fibrils that accumulate in neuronal inclusion bodies, resulting in Huntington's disease. We previously showed that reversible formation of a sparsely populated tetramer of the N-terminal amphiphilic domain, comprising a dimer of dimers in a four-helix bundle configuration, occurs on the microsecond timescale and is an essential prerequisite for subsequent nucleation and fibril formation that takes place orders of magnitude slower on a timescale of hours. For pathogenic htt<sup>ex1</sup>, such as htt<sup>ex1</sup>Q<sub>35</sub> with 35 glutamines, NMR signals decay too rapidly to permit measurement of time-intensive exchange-based experiments. Here, we show that quantitative analysis of both the kinetics and mechanism of prenucleation tetramerization and aggregation can be obtained simultaneously from a series of <sup>1</sup>H-<sup>15</sup>N band-selective optimized flip-angle short-transient heteronuclear multiple quantum coherence (SOFAST-HMQC) correlation spectra. The equilibria and kinetics of tetramerization are derived from the time dependence of the <sup>15</sup>N chemical shifts and <sup>1</sup>H-<sup>15</sup>N cross-peak volume/intensity ratios, while the kinetics of irreversible fibril formation are afforded by the decay curves of <sup>1</sup>H-<sup>15</sup>N cross-peak intensities and volumes. Analysis of data on htt<sup>ex1</sup>Q<sub>35</sub> over a series of concentrations ranging from 200 to 750 μM and containing variable (7 to 20%) amounts of the Met<sup>7</sup>O sulfoxide species, which does not tetramerize, shows that aggregation of native htt<sup>ex1</sup>Q<sub>35</sub> proceeds via fourth-order primary nucleation, consistent with the critical role of prenucleation tetramerization, coupled with first-order secondary nucleation. The Met<sup>7</sup>O sulfoxide species does not nucleate but is still incorporated into fibrils by elongation.

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