22.6
순환 아데노신 일인산(cAMP)은 단백질 키나제 A(PKA)를 활성화하고 다양한 생물학적 과정을 조절하는 필수적인 2차 전달자입니다. 단일 에피네프린 분자는 GPCR에 결합하고 여러 이종삼합체 G 단백질을 활성화하며, 각각은 여러 아데닐릴 시클라제를 자극하고 신호를 증…
세포외 리간드 또는 첫 번째 전달자는 세포에 직접 들어갈 수 없습니다. 대신, GPCR과 결합하여 G 단백질을 자극하고, G 단백질은 아데닐릴 시클라아제(adenylyl cyclase)와 같은 효소를 활성화하여 두 번째 메신저인 고리형 AMP를 다량 방출합니다.
순환 AMP는 주로 단백질 키나아제 A 또는 PKA를 활성화하여 신호를 전달하고 증폭합니다.
하나의 고리형 AMP 분자의 결합은 더 많은 고리형 AMP가 PKA의 조절 소단위체를 결합하는 데 도움이 됩니다. 그 결과 구조적 변화로 PKA 촉매 소단위가 방출됩니다.
활성화된 PKA는 인산화효소 키나아제(phosphorylase kinase) 및 글리코겐 합성효소(glycogen synthase)와 같은 세포질 표적 단백질을 빠르게 인산화하여 활성화하거나 억제합니다. 이것은 포도당이 글리코겐으로 전환되는 것을 방지하고 포도당을 신체로 동원합니다.
활성화된 PKA는 또한 핵에 들어가 고리형 AMP 반응 요소 결합 단백질(CREB)을 인산화합니다.
인산화된 CREB는 표적 유전자에 고리형 AMP 반응 요소(CRE)와 결합하고 포도당 합성을 위한 효소의 전사를 시작하여 포도당 수치를 복원합니다.
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Q1: How does cyclic AMP activate protein kinase A?
Cyclic AMP binds to the regulatory subunits of PKA, causing a conformational change that releases the catalytic subunits. The binding of four cAMP molecules is required to fully dissociate the catalytic subunits from the regulatory subunit, activating PKA. Once activated, PKA rapidly phosphorylates downstream target proteins to generate cellular responses.
Q2: What role does PKA play in glucose mobilization?
PKA phosphorylates and activates glycogen phosphorylase kinase, which then activates glycogen phosphorylase to break down glycogen into glucose. Simultaneously, PKA phosphorylates and inhibits glycogen synthase, preventing glycogen synthesis. PKA also phosphorylates an inhibitor of phosphoprotein phosphatase, blocking the enzyme from reversing these phosphorylations and maintaining glucose mobilization.
Q3: How does signal amplification occur in the cAMP pathway?
A single epinephrine molecule binds one GPCR and activates multiple heterotrimeric G proteins. Each G protein stimulates adenylyl cyclase, which synthesizes large numbers of cAMP molecules. This cascade amplifies the initial signal, allowing small changes in ligand concentration to produce large changes in cAMP levels and PKA activity.
Q4: How does PKA regulate gene transcription in response to cAMP?
Activated PKA enters the nucleus and phosphorylates CREB (cyclic AMP response element-binding protein). Phosphorylated CREB binds to CRE (cyclic AMP response element) sequences on target genes, initiating transcription of enzymes for glucose synthesis. This nuclear response restores glucose levels after the initial cytosolic mobilization phase.
Q5: Why does PKA produce different cellular responses in different cell types?
PKA generates distinct responses by phosphorylating specific target proteins unique to each cell type. In liver and muscle cells, PKA activates glucose mobilization through glycogen breakdown. In adipose cells, PKA phosphorylates and activates lipase, breaking down triglycerides into free fatty acids. The same extracellular ligand triggers different outcomes based on available target proteins.
Q6: How is the cAMP-PKA pathway turned off?
When the extracellular stimulus is removed, cAMP levels decrease, reducing PKA activation. Inactive PKA cannot phosphorylate the inhibitor of phosphoprotein phosphatase, allowing the phosphatase to become active. The phosphatase removes phosphates from glycogen-metabolizing enzymes, promoting glycogen synthesis and preventing further glucose mobilization.
Q7: What is the function of phosphoprotein phosphatase in the cAMP pathway?
Phosphoprotein phosphatase reverses PKA phosphorylation by removing phosphate groups from target enzymes. When active, it dephosphorylates glycogen phosphorylase kinase, glycogen phosphorylase, and glycogen synthase, switching the cell from glucose mobilization to glycogen synthesis. PKA controls phosphatase activity by phosphorylating its inhibitor protein.