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1.
Proc Natl Acad Sci U S A ; 120(15): e2210332120, 2023 04 11.
Artigo em Inglês | MEDLINE | ID: mdl-37011217

RESUMO

Nonspecific interactions are a key challenge in the successful development of therapeutic antibodies. The tendency for nonspecific binding of antibodies is often difficult to reduce by rational design, and instead, it is necessary to rely on comprehensive screening campaigns. To address this issue, we performed a systematic analysis of the impact of surface patch properties on antibody nonspecificity using a designer antibody library as a model system and single-stranded DNA as a nonspecificity ligand. Using an in-solution microfluidic approach, we find that the antibodies tested bind to single-stranded DNA with affinities as high as KD = 1 µM. We show that DNA binding is driven primarily by a hydrophobic patch in the complementarity-determining regions. By quantifying the surface patches across the library, the nonspecific binding affinity is shown to correlate with a trade-off between the hydrophobic and total charged patch areas. Moreover, we show that a change in formulation conditions at low ionic strengths leads to DNA-induced antibody phase separation as a manifestation of nonspecific binding at low micromolar antibody concentrations. We highlight that phase separation is driven by a cooperative electrostatic network assembly mechanism of antibodies with DNA, which correlates with a balance between positive and negative charged patches. Importantly, our study demonstrates that both nonspecific binding and phase separation are controlled by the size of the surface patches. Taken together, these findings highlight the importance of surface patches and their role in conferring antibody nonspecificity and its macroscopic manifestation in phase separation.


Assuntos
Anticorpos Monoclonais , DNA de Cadeia Simples , Anticorpos Monoclonais/química , Interações Hidrofóbicas e Hidrofílicas
2.
Nat Commun ; 12(1): 1085, 2021 02 17.
Artigo em Inglês | MEDLINE | ID: mdl-33597515

RESUMO

Liquid-liquid phase separation of proteins underpins the formation of membraneless compartments in living cells. Elucidating the molecular driving forces underlying protein phase transitions is therefore a key objective for understanding biological function and malfunction. Here we show that cellular proteins, which form condensates at low salt concentrations, including FUS, TDP-43, Brd4, Sox2, and Annexin A11, can reenter a phase-separated regime at high salt concentrations. By bringing together experiments and simulations, we demonstrate that this reentrant phase transition in the high-salt regime is driven by hydrophobic and non-ionic interactions, and is mechanistically distinct from the low-salt regime, where condensates are additionally stabilized by electrostatic forces. Our work thus sheds light on the cooperation of hydrophobic and non-ionic interactions as general driving forces in the condensation process, with important implications for aberrant function, druggability, and material properties of biomolecular condensates.


Assuntos
Interações Hidrofóbicas e Hidrofílicas , Simulação de Dinâmica Molecular , Transição de Fase , Proteínas/química , Eletricidade Estática , Animais , Anexinas/química , Proteínas de Ciclo Celular/química , Proteínas de Ligação a DNA/química , Humanos , Proteína FUS de Ligação a RNA/química , Fatores de Transcrição SOXB1/química , Células Sf9 , Spodoptera , Fatores de Transcrição/química
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