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Deactivation of the Unfolded Protein Response Aggravated Renal AA Amyloidosis in HSF1 Deficiency Mice
Wei Liu1, Shunjie Xia1,2, Fang Yao1
1Department of Pathology, Key Laboratory of Kidney Diseases of Hebei Province, Hebei Medical University, Shijiazhuang, China.
Abstract:
Systemic amyloid A (AA) amyloidosis, which is considered the second most common form of systemic amyloidosis usually takes place several years prior to the occurrence of chronic inflammation, generally involving the kidney. Activated HSF1, which alleviated unfolded protein response (UPR) or enhanced HSR, is the potential therapeutic target of many diseases. However, the effect of HSF1 on AA amyloidosis remains unclear. This study focused on evaluating effect of HSF1 on AA amyloidosis based on HSF1 knockout mice. As a result, aggravated amyloid deposits and renal dysfunction have been found in HSF1 knockout mice. In progressive AA amyloidosis, HSF1 deficiency enhances serum amyloid A production might to lead to severe AA amyloid deposition in mice, which may be related to deactivated unfolded protein response as well as enhanced inflammation. Thus, HSF1 plays a significant role on UPR related pathway impacting AA amyloid deposition, which can mitigate amyloidogenic proteins from aggregation pathologically and is the possible way for intervening with the pathology of systemic amyloid disorder. In conclusion, HSF1 could not only serve as a new target for AA amyloidosis treatment in the future, but HSF1 knockout mice also can be considered as a valuable novel animal model for renal AA amyloidosis.
Insights
Heat shock factor 1 (HSF1) deficiency worsens systemic amyloid A amyloidosis, increasing amyloid deposits and kidney dysfunction. HSF1 may be a therapeutic target for this disorder.
Area of Science:
- Nephrology
- Molecular Biology
- Immunology
Background:
- Systemic amyloid A (AA) amyloidosis is the second most common form, often affecting the kidney after chronic inflammation.
- Heat shock factor 1 (HSF1) is implicated in cellular stress responses, including the unfolded protein response (UPR), but its role in AA amyloidosis is unknown.
Purpose of the Study:
- To investigate the role of HSF1 in the development and progression of AA amyloidosis.
- To evaluate the potential of HSF1 as a therapeutic target for AA amyloidosis.
Main Methods:
- Utilized HSF1 knockout mice to model AA amyloidosis.
- Assessed amyloid deposition and renal function in HSF1 knockout and wild-type mice.
Main Results:
- HSF1 knockout mice exhibited aggravated amyloid deposits and significant renal dysfunction.
- HSF1 deficiency was associated with increased serum amyloid A production, potentially exacerbating AA amyloid deposition.
- These effects may be linked to a deactivated unfolded protein response and enhanced inflammation.
Conclusions:
- HSF1 plays a protective role in AA amyloidosis by mitigating amyloidogenic protein aggregation via UPR pathways.
- HSF1 represents a potential therapeutic target for treating systemic amyloid disorders.
- HSF1 knockout mice provide a valuable model for studying renal AA amyloidosis.
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