29.9
세포를 함께 고정시키는 부착연접은 인장력 및 전단 응력과 같은 기계적 자극에 동적으로 적응하는 다중 단백질 복합체입니다. 이러한 접합부의 기계감각 단백질은 이러한 기계적 자극을 감지하고 구조의 변화를 겪어 기능이 변경될 수 있습니다. 이 과정을 기계신호전달이라고 합니다…
피부와 장 상피와 같은 조직은 꼬집거나 늘어나는 것과 같은 외부의 기계적 힘을 지속적으로 경험합니다.
이러한 상피 세포를 함께 고정하는 부착 접합부는 이러한 기계적 장력에 반응하여 동적으로 변화할 수 있습니다. 기계적 자극을 생화학적 변화로 변환하는 것을 메카노트랜스덕션(mechanotransduction)이라고 합니다.
이러한 세포에서 adherens junctions는 cadherins, catenins 및 actomyosin contractile bundles의 큰 클러스터로 구성된 연속적인 부착 영역(adhesion belt)을 형성합니다.
이 접합부에 있는 알파-카테닌은 기계적 장력에 반응하여 형태를 변화시키는 기계감각 단백질로 작용합니다.
증가된 수축력이 액틴 필라멘트를 당기면 알파-카테닌은 접힌 형태에서 펼쳐진 형태로 바뀝니다.
이 풀림은 세포질에서 폐쇄되고 비활성 형태로 남아 있는 세포골격 결합 단백질인 빈쿨린(vinculin)에 대한 비밀스러운 결합 부위를 엽니다.
알파-카테닌과 결합하면 빈쿨린은 개방적이고 활동적인 형태로 형태가 바뀝니다.
활성 빈큘린은 부위에 추가적인 액틴 필라멘트의 동원을 촉진하여 접합부를 강화하고 세포에 힘을 분산시킵니다.
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Q1: What is mechanotransduction at adherens junctions?
Mechanotransduction is the conversion of mechanical stimuli, such as tension or stretching, into biochemical changes at adherens junctions. Epithelial tissues like skin and intestinal epithelium constantly experience external mechanical forces. Mechanosensory proteins at these junctions detect these forces and undergo conformational changes that alter their function, allowing cells to respond dynamically to mechanical stress.
Q2: How does alpha-catenin respond to mechanical tension?
Alpha-catenin is a mechanosensory protein that changes conformation when contractile forces pull on actin filaments. Under normal conditions, alpha-catenin remains folded with its vinculin homology binding domains inaccessible. When tension increases, alpha-catenin unfolds, exposing these cryptic binding sites and enabling interaction with other proteins like vinculin to strengthen the junction.
Q3: What role does vinculin play in junction strengthening?
Vinculin is a cytoskeletal binding protein that exists in an inactive, closed form in the cytoplasm. When exposed alpha-catenin binding sites activate vinculin, it changes to an open conformation. The active vinculin recruits additional actin filaments to the junction, strengthening it and distributing mechanical force across cells more effectively.
Q4: What is the adhesion belt in epithelial cells?
The adhesion belt is a continuous zone of attachment formed by adherens junctions, comprising large clusters of cadherins, catenins, and actomyosin contractile bundles. This structure anchors epithelial cells together and provides the mechanical foundation for cells to respond to external forces like pinching or stretching while maintaining tissue integrity.
Q5: How does vinculin binding affect the actin cytoskeleton?
When vinculin binds to unfolded alpha-catenin, its open neck region becomes accessible to actin-regulating proteins like Arp2/3. This allows vinculin to recruit more actin filaments and dynamically reorganize the actin cytoskeleton in response to mechanical stress, enhancing junction stability and force distribution.
Q6: Why do adherens junctions need to adapt to mechanical forces?
Tissues like skin and intestinal epithelium experience constant external mechanical forces such as pinching and stretching. Adherens junctions must dynamically adapt to these forces to maintain tissue integrity and prevent cell separation. This adaptive response through mechanotransduction allows cells to strengthen junctions under stress and distribute forces efficiently across the tissue.
Q7: What structural changes occur in alpha-catenin during mechanotransduction?
Alpha-catenin undergoes an allosteric shift from a folded to an unfolded conformation when mechanical tension increases. This unfolding exposes three vinculin homology domains that were previously inaccessible. The conformational change allows these domains to bind vinculin and other actin-binding proteins, initiating the cascade that strengthens the junction.