This concept captures the structural remodeling of the thylakoid membrane network that occurs under high light. The review links these architectural changes to the efficiency of PSII repair.
First-pass extracted concept
high-light-induced thylakoid membrane architecture dynamics
Candidate: concept label1 source documents4 linked claims
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Aliases
dynamic changes in thylakoid membrane architecture, high-light-induced structural changes of the thylakoid membrane system
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Evidence Snippets
This review summarizes recent progress in our understanding of high-light-induced structural changes of the thylakoid membrane system and correlates these changes to the efficiency of the PSII repair cycle... dynamic changes in thylakoid membrane architecture triggered by high light exposure are central for efficient repair of PSII.
Supporting Sources
Linked Claims
An important feature of the PSII repair cycle is its subcompartmentalization to stacked grana thylakoids and unstacked thylakoid regions.
Quoted textsource-backed
An important feature of the repair cycle is its subcompartmentalization to stacked grana thylakoids and unstacked thylakoid regions.
Crosstalk between stacked and unstacked thylakoid membranes is essential to understand the PSII repair cycle.
Quoted textsource-backed
Thus, understanding the crosstalk between stacked and unstacked thylakoid membranes is essential to understand the PSII repair cycle.
Dynamic changes in thylakoid membrane architecture triggered by high light exposure are central for efficient repair of PSII.
Quoted textsource-backed
It turns out that dynamic changes in thylakoid membrane architecture triggered by high light exposure are central for efficient repair of PSII.
Reversible protein phosphorylation has a role in high-light-associated structural alterations of the thylakoid membrane system.
Quoted textsource-backed
The role of reversible protein phosphorylation for structural alterations is discussed.