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Stability of 100 Homo and Heterotypic Coiled?Coil a?a�� Pairs for Ten Amino Acids (A, L, I, V, N, K, S, T, E, and R)

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Figshare2016-02-29 更新2026-05-11 收录
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https://figshare.com/articles/dataset/Stability_of_100_Homo_and_Heterotypic_Coiled_Coil_b_a_b_b_a_b_Pairs_for_Ten_Amino_Acids_A_L_I_V_N_K_S_T_E_and_R_/3057595
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We present the thermal stability monitored by circular dichroism (CD) spectroscopy at 222 nm of 100 heterodimers that contain all possible coiled-coil a?a�� pairs for 10 amino acids (I, V, L, N, A, K S, T, E, and R). This includes the stability of 36 heterodimers for 6 amino acids (I, V, L, N, A, and K) previously described () and 64 new heterodimers including the 4 amino acids (S, T, E, and R). We have calculated a double mutant alanine thermodynamic cycle to determine a?a�� pair coupling energies to evaluate which a?a�� pairs encourage specific dimerization partners. The four new homotypic a?a�� pairs (T?T, S?S, R?R, E?E) are repulsive relative to A?A and have destabilizing coupling energies. Among the 90 heterotypic a?a�� pairs, the stabilizing coupling energies contain lysine or arginine paired with either an aliphatic or a polar amino acid. The range in coupling energies for each amino acid reveals its potential to regulate dimerization specificity. The a?a�� pairs containing isoleucine and asparagine have the greatest range in coupling energies and thus contribute dramatically to dimerization specificity, which is to encourage homodimerization. In contrast, the a?a�� pairs containing charged amino acids (K, R, and E) show the least range in coupling energies and promiscuously encourage heterodimerization.
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2016-02-29
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