Concentration‐dependent dimerization of staphylokinase variants with engineered surface charges
Концентрационно-зависимая димеризация вариантов стафилокиназы с модифицированными поверхностными зарядами
2026-02-12
SCID: 54.1/7e5bzwmq
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concentration-dependent dimerizationdifferential scanning calorimetrydynamic light scatteringengineered surface chargesstaphylokinase
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Abstract (AI)
Staphylokinase (SAK) is a promising third-generation thrombolytic protein, but its clinical potential is limited by immunogenicity and stability concerns. The conformational and colloidal stabilities of four SAK variants-SAK 42D, SAK STAR, and their non-immunogenic derivatives SAK 42D 3A and SAK STAR 3A-were evaluated using differential scanning calorimetry (DSC), dynamic light scattering (DLS), and aggregation kinetics assays. DSC analyses revealed that thermal denaturation of all variants proceeds via two consecutive irreversible steps, with transition parameters strongly dependent on scan rate and protein concentration. SAK STAR variants exhibited markedly exothermic first transitions and reduced scan rate dependence, suggesting stabilization of intermediate states and suppression of aggregation. In contrast, SAK 42D variants exhibited endothermic or weakly exothermic first transitions and a higher aggregation propensity, correlating with reduced conformational stability and formation of less stable dimers. Colloidal stability tests showed that SAK STAR and SAK STAR 3A remained largely aggregation-resistant, whereas SAK 42D and SAK 42D 3A aggregated rapidly at elevated temperatures (>51°C and >38°C, respectively), following apparent second-order kinetics. DLS confirmed concentration-dependent dimerization in all variants, with SAK 42D 3A displaying pronounced polydispersity and instability. We could rationalize this behavior in the context of engineered surface charges. Our results demonstrate that SAK variant stability is shaped by a complex interplay between primary sequence, dimerization behavior, and aggregation propensity, guiding the design of clinically viable thrombolytic agents and their formulations.
Key Findings
1
Colloidal stability tests: SAK STAR and SAK STAR 3A remain largely aggregation-resistant, whereas SAK 42D and SAK 42D 3A aggregate rapidly at elevated temperatures (>51°C and >38°C, respectively) following apparent second-order kinetics.
2
DLS confirms concentration-dependent dimerization for all variants, with SAK 42D 3A showing pronounced polydispersity and instability.
3
Engineered surface charges can rationalize the observed differences in dimerization, stability, and aggregation propensity, implying primary sequence and surface charge interplay shapes variant stability.
4
SAK 42D variants show endothermic or weakly exothermic first transitions, higher aggregation propensity, reduced conformational stability, and formation of less stable dimers.
5
SAK STAR variants show markedly exothermic first DSC transitions and reduced scan rate dependence, indicating stabilized intermediate states and suppressed aggregation.
6
Thermal denaturation of all four SAK variants follows two consecutive irreversible steps with transition parameters strongly dependent on scan rate and protein concentration.
Research Object
Staphylokinase (SAK) variants SAK 42D, SAK STAR, SAK 42D 3A, and SAK STAR 3A
Research Subject
Concentration-dependent dimerization, conformational and colloidal stability, thermal denaturation transitions, and aggregation propensity as influenced by engineered surface charges
Publication Details
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2026-02-12
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