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Combining X-Ray Crystallography with Small Angle X-Ray Scattering to Model Unstructured Regions of Nsa1 from S. Cerevisiae
Published on: January 10, 2018
Exploring the "minimal" structure of a functional ADAMTS13 by mutagenesis and small-angle X-ray scattering
Jian Zhu1, Joshua Muia1, Garima Gupta1
1Department of Medicine, Washington University School of Medicine, St. Louis, MO.
Abstract:
Human ADAMTS13 is a multidomain protein with metalloprotease (M), disintegrin-like (D), thrombospondin-1 (T), Cys-rich (C), and spacer (S) domains, followed by 7 additional T domains and 2 CUB (complement components C1r and C1s, sea urchin protein Uegf, and bone morphogenetic protein-1) domains. ADAMTS13 inhibits the growth of von Willebrand factor (VWF)-platelet aggregates by cleaving the cryptic Tyr1605-Met1606 bond in the VWF A2 domain. ADAMTS13 is regulated by substrate-induced allosteric activation; without shear stress, the distal T8-CUB domains markedly inhibit VWF cleavage, and binding of VWF domain D4 or selected monoclonal antibodies (MAbs) to distal ADAMTS13 domains relieves this autoinhibition. By small angle X-ray scattering (SAXS), ADAMTS13 adopts a hairpin-like conformation with distal T7-CUB domains close to the proximal MDTCS domains and a hinge point between T4 and T5. The hairpin projects like a handle away from the core MDTCS and T7-CUB complex and contains distal T domains that are dispensable for allosteric regulation. Truncated constructs that lack the T8-CUB domains are not autoinhibited and cannot be activated by VWF D4 but retain the hairpin fold. Allosteric activation by VWF D4 requires T7, T8, and the 58-amino acid residue linker between T8 and CUB1. Deletion of T3 to T6 produced the smallest construct (delT3-6) examined that could be activated by MAbs and VWF D4. Columba livia (pigeon) ADAMTS13 (pADAMTS13) resembles human delT3-6, retains normal activation by VWF D4, and has a SAXS envelope consistent with amputation of the hairpin containing the dispensable T domains of human ADAMTS13. Our findings suggest that human delT3-6 and pADAMTS13 approach a "minimal" structure for allosterically regulated ADAMTS13.
Insights
Human ADAMTS13, a key enzyme in regulating blood clotting, adopts a hairpin structure. Removing specific domains creates a minimal, activated form, similar to pigeon ADAMTS13.
Area of Science:
- Biochemistry
- Structural Biology
- Hematology
Background:
- ADAMTS13 is a metalloprotease crucial for regulating von Willebrand factor (VWF) and preventing platelet aggregation.
- Its activity is modulated by substrate-induced allosteric activation, involving distal domains that normally inhibit VWF cleavage.
Purpose of the Study:
- To elucidate the structural basis of ADAMTS13 autoinhibition and allosteric activation.
- To identify the minimal structural requirements for regulated ADAMTS13 function.
Main Methods:
- Small-angle X-ray scattering (SAXS) to determine the overall conformation of ADAMTS13.
- Analysis of truncated and modified ADAMTS13 constructs, including pigeon ADAMTS13 (pADAMTS13).
Main Results:
- Human ADAMTS13 adopts a hairpin conformation, with distal domains inhibiting VWF cleavage.
- Allosteric activation by VWF D4 requires specific distal T domains and linker regions.
- A minimal construct (delT3-6) and pADAMTS13 exhibit regulated activity and lack the inhibitory hairpin structure.
Conclusions:
- The hairpin conformation of ADAMTS13 is essential for its autoinhibition.
- Specific distal domains and linker regions are critical for substrate-induced allosteric activation.
- Minimal ADAMTS13 structures, like delT3-6 and pADAMTS13, offer insights into the core functional requirements of the enzyme.

