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Magainin 2 amide interaction with lipid membranes: Calorimetric detection of peptide binding and pore formation

机译:Magainin 2酰胺与脂质膜的相互作用:量热法检测肽结合和孔形成

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The interaction of the antibiotic magainin 2 amide (M2a) with lipid bilayers was investigated with high-sensitivity titration calorimetry. The enthalpy of transfer of the cationic M2a to negatively charged small unilamellar vesicles composed of 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC) and 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphoglycerol (POPG) (75:25, mol/mol) was measured as Delta H = -17.0 +/- 1 kcal/mol of peptide. The adsorption isotherm was determined by injecting lipid vesicles into peptide solutions at low peptide concentrations (c(p)(o) < 7 mu M). The apparent partition coefficient was K-app approximate to 1.2 x 10(4) M-1 at a peptide equilibrium concentration of 1 mu M but decreased with increasing peptide concentration. The hydrophobic partitioning of M2a into the lipid membrane is modulated by electrostatic effects that arise from the attraction of the positively charged peptide to the negatively charged membrane. Using the Gouy-Chapman theory to correct for electrostatic attraction, the experimental binding isotherms can be explained with an intrinsic (hydrophobic) partition coefficient of K = 55 +/- 5 M-1 and an effective peptide charge of z = 3.7-3.8. The free energy of binding is Delta G = -4.8 kcal/mol At peptide concentrations c(p)(o) > similar to 7 mu M, a second effect comes into play, and the titration enthalpies can no longer be explained exclusively by peptide partitioning. The first few injections produce enthalpies of reaction which are distinctly smaller than expected from a pure partition equilibrium, followed by a series of injections with reaction heats larger than expected. After subtracting the enthalpic contribution due to partitioning, the residual enthalpies are endothermic for the first few injections, and exothermic for the consecutive steps. Furthermore, the endothermic excess heat is compensated exactly by the exothermic excess heat: i.e., the excess heat consumed in the first part of the titration experiment is returned during the second part, Endothermic excess enthalpies are observed for total molar peptide-to-lipid ratios of P/L > similar to 3.0%, whereas exothermic excess heats were seen for 0.7% < P/L < 3.0%. Below P/L < similar to 0.7%, the binding follows the partition equilibrium. Based on earlier spectroscopic evidence, it is suggested that magainin 2 amide binds to the lipid membrane and forms pores at high peptide-to-lipid ratio, this process being characterized by an endothermic reaction enthalpy. Pore formation is reversed with increasing lipid concentration, and the peptide pores disintegrate. The limiting peptide-to-lipid ratio deduced from titration calorimetry for M2a pore formation is in excellent agreement with spectroscopic methods, The enthalpy of pore formation amounts to Delta H = + 6.2 +/- 1.6 kcal/mol peptide or Delta H similar to 25-45 kcal/mol pore if the pore is comprised of 4-7 peptide molecules. [References: 52]
机译:用高灵敏度滴定量热法研究了抗生素magainin 2酰胺(M2a)与脂质双层的相互作用。阳离子M2a转移到带负电荷的小单层小囊泡的焓,该小囊泡由1-棕榈酰基-2-油酰基-sn-甘油-3-磷酸胆碱(POPC)和1-棕榈酰基-2-油酰基-sn-甘油-3-磷酸甘油组成(POPG)(75:25,mol / mol)被测量为肽的Delta H = -17.0 +/- 1 kcal / mol。通过将脂质小泡以低肽浓度(c(p)(o)<7μM)注入肽溶液中来确定吸附等温线。在1μM的肽平衡浓度下,表观分配系数为K-app,约为1.2 x 10(4)M-1,但随着肽浓度的增加而降低。 M2a在脂质膜中的疏水分配受到静电效应的调节,该静电效应是由带正电的肽吸引到带负电的膜引起的。使用Gouy-Chapman理论校正静电吸引,可以用K = 55 +/- 5 M-1的固有(疏水)分配系数和z = 3.7-3.8的有效肽电荷来解释实验结合等温线。结合的自由能为Delta G = -4.8 kcal / mol在肽浓度c(p)(o)>类似于7μM时,第二种作用起作用,并且滴定焓不再只能由肽解释分区。前几次注入产生的反应焓明显小于纯分配平衡所预期的反应焓,随后进行的一系列注入的反应热大于预期的焓。减去因分配产生的焓贡献后,残留的焓对于前几次注射是吸热的,对于连续的步骤是放热的。此外,吸热过量热量被放热过量热量精确补偿:即,滴定实验第一部分消耗的过量热量在第二部分期间返回,观察到吸热过量焓代表总的肽与脂质摩尔比P / L的> 3.0%相似,而0.7%

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