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Published on: February 15, 2022
The negative feedback loop of NF-κB/miR-202-5p/HMGB2 attenuates sepsis induced acute kidney injury
Juan Wang1, Jian Chen2, Zheng Li3
1Department of Thoracic Surgery, The Second Xiangya Hospital of Central South University, Changsha, China.
Abstract:
Sepsis represents a primary cause of acute kidney injury (AKI), yet the underlying mechanisms of septic AKI remain poorly understood. Thus, there exists an urgent need for a deeper understanding of its underlying mechanisms and the development of effective therapeutic strategies. Our study reveals a notable induction in microRNA-202-5p (miR-202-5p) levels within renal tubular cells in septic AKI both in vivo and in vitro models. Treatment of renal tubular cells with LPS induced NF-κB activation, which was linked to the induction of miR-202-5p. ChIP assays confirmed NF-κB binding to the miR-202-5p gene promoter upon LPS stimulation. Functionally, miR-202-5p mimics attenuated tubular cell death, kidney injury, and intra-renal inflammatory cytokine production, whereas inhibition of miR-202-5p conferred injurious effects in septic AKI. Notably, miR-202-5p suppressed the expression of High Mobility Group Box 2 (HMGB2) in both in vitro and in vivo septic AKI models. Luciferase microRNA target assays further validated HMGB2 as a direct target of miR-202-5p. Knockdown of HMGB2 inhibits LPS-induced NF-κB activation in septic AKI, as evidenced by HMGB2 siRNA transfection significantly inhibited the nuclear translocation of NF-κB. Together, these findings elucidate the NF-κB/miR-202-5p/HMGB2 negative feedback loop which can attenuate kidney injury by inhibiting renal inflammation in septic AKI. Our findings open new avenues for developing targeted therapies to manage septic AKI effectively.
Insights
Sepsis causes acute kidney injury (AKI), but mechanisms are unclear. This study identifies a protective feedback loop involving microRNA-202-5p (miR-202-5p) and High Mobility Group Box 2 (HMGB2) that reduces kidney inflammation in septic AKI.
Area of Science:
- Nephrology
- Molecular Biology
- Immunology
Background:
- Sepsis is a major cause of acute kidney injury (AKI), with poorly understood mechanisms.
- Effective therapeutic strategies for septic AKI are urgently needed.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying septic AKI.
- To identify potential therapeutic targets for mitigating kidney damage in sepsis.
Main Methods:
- Investigated microRNA-202-5p (miR-202-5p) and High Mobility Group Box 2 (HMGB2) in septic AKI models (in vivo and in vitro).
- Utilized LPS stimulation, chromatin immunoprecipitation (ChIP) assays, miR-202-5p mimics/inhibitors, and HMGB2 knockdown (siRNA).
- Assessed NF-κB activation, tubular cell death, kidney injury markers, and inflammatory cytokine production.
Main Results:
- miR-202-5p levels were induced in renal tubular cells during septic AKI.
- NF-κB activation by LPS led to increased miR-202-5p expression.
- miR-202-5p protected against tubular cell death and kidney injury by suppressing HMGB2.
- HMGB2 knockdown inhibited LPS-induced NF-κB activation.
Conclusions:
- Discovered an NF-κB/miR-202-5p/HMGB2 negative feedback loop that attenuates kidney injury in septic AKI by reducing inflammation.
- This pathway represents a novel therapeutic target for managing septic AKI.

