Force-dependent polymorphism in type IV pili reveals hidden epitopes

被引:95
|
作者
Biais, Nicolas [1 ]
Higashi, Dustin L. [2 ,3 ]
Brujic, Jasna [4 ]
So, Magdalene [2 ,3 ]
Sheetz, Michael P. [1 ]
机构
[1] Columbia Univ, Dept Biol Sci, New York, NY 10027 USA
[2] Univ Arizona, Dept Immunobiol, Tucson, AZ 85719 USA
[3] Univ Arizona, Inst BIO5, Tucson, AZ 85719 USA
[4] NYU, Dept Phys, New York, NY 10003 USA
关键词
force polymorphism; alternate immunogenic properties; BACTERIAL FLAGELLAR FILAMENTS; TWITCHING MOTILITY; MICROSCOPY; ADHESION; ACTIN; RETRACTION; TWEEZERS; DYNAMICS; BIOLOGY; BINDING;
D O I
10.1073/pnas.0911328107
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Through evolution, nature has produced exquisite nanometric structures, with features unrealized in the most advanced man-made devices. Type IV pili (Tfp) represent such a structure: 6-nm-wide retractable filamentous appendages found in many bacteria, including human pathogens. Whereas the structure of Neisseria gonorrhoeae Tfp has been defined by conventional structural techniques, it remains difficult to explain the wide spectrum of functions associated with Tfp. Here we uncover a previously undescribed force-induced quaternary structure of the N. gonorrhoeae Tfp. By using a combination of optical and magnetic tweezers, atomic force microscopy, and molecular combing to apply forces on purified Tfp, we demonstrate that Tfp subjected to approximately 100 pN of force will transition into a new conformation. The new structure is roughly 3 times longer and 40% narrower than the original structure. Upon release of the force, the Tfp fiber regains its original form, indicating a reversible transition. Equally important, we show that the force-induced conformation exposes hidden epitopes previously buried in the Tfp fiber. We postulate that this transition provides a means for N. gonorrhoeae to maintain attachment to its host while withstanding intermittent forces encountered in the environment. Our findings demonstrate the need to reassess our understanding of Tfp dynamics and functions. They could also explain the structural diversity of other helical polymers while presenting a unique mechanism for polymer elongation and exemplifying the extreme structural plasticity of biological polymers.
引用
收藏
页码:11358 / 11363
页数:6
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