Baicalein Attenuates Disuse-Driven Skeletal Senescence in Association with Gut Microbiota Modulation
Abstract
1. Introduction
2. Results
2.1. Baicalein Administration Exhibits No Adverse Effects on Rats
2.2. Baicalein Ameliorated Bone Microarchitecture in HLU-Exposed Rats
2.3. Baicalein Improved Femoral Biomechanical Integrity in HLU-Exposed Rats
2.4. Baicalein Enhances Bone Matrix Mineralization in HLU-Exposed Rats
2.5. Baicalein Restored Bone Turnover Homeostasis in HLU-Exposed Rats
2.6. Baicalein Ameliorates Skeletal Senescence in HLU-Exposed Rats
2.7. Baicalein Ameliorates Inflammation Response Induced by Disuse
2.8. Baicalein Ameliorated the Composition of the Intestinal Flora in HLU-Induced Rats
3. Discussion
4. Materials and Methods
4.1. HLU Rat Model Establishment and Baicalein Intervention
4.2. Determination of the Organ Index
4.3. Bone Mineral Density (BMD) Assessment
4.4. Micro-Computed Tomography
4.5. Dynamic Bone Histomorphometry
4.6. Three-Point Bending Mechanical Analysis
4.7. Bone Turnover Biomarkers and Inflammatory Cytokines in Serum
4.8. RNA Isolation and Quantitative Real-Time PCR
4.9. Fecal 16S rRNA Sequencing
4.10. Statistical Analyses
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Primer | Sequence (5′ to 3′) | NCBI Gene ID |
|---|---|---|
| GAPDH | F: 5′-TGCACCACCAACTGCTTAG-3′ | 14433 |
| R: 5′-GGATGCAGGGATGATGTTC-3′ | ||
| p16 | F: 5′-CCCGAACACTTTCGGTCGTA-3′ | 12578 |
| R: 5′-GCACCATAGGAGAGCAGGAG-3′ | ||
| p21 | F: 5′-GTAGGACTTCGGGGTCTCCT-3′ | 12575 |
| R: 5′-AATGTCAAGGCTCTGGACGG-3′ | ||
| p53 | F: 5′-TTGCCATTTTATGACTTTAGGG-3′ | 22059 |
| R: 5′-AACTGACCGGATAGGATTTCG-3′ |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Zhao, X.; Ren, T.; Bai, W.; Wang, H.; Rahman, S.U.; Deng, X.; Ru, K.; Zhang, G.; Zhang, W.; Qian, A. Baicalein Attenuates Disuse-Driven Skeletal Senescence in Association with Gut Microbiota Modulation. Molecules 2026, 31, 3336. https://doi.org/10.3390/molecules31183336
Zhao X, Ren T, Bai W, Wang H, Rahman SU, Deng X, Ru K, Zhang G, Zhang W, Qian A. Baicalein Attenuates Disuse-Driven Skeletal Senescence in Association with Gut Microbiota Modulation. Molecules. 2026; 31(18):3336. https://doi.org/10.3390/molecules31183336
Chicago/Turabian StyleZhao, Xin, Tingting Ren, Wei Bai, Hong Wang, Siddiq Ur Rahman, Xiaoni Deng, Kang Ru, Genyang Zhang, Wenjuan Zhang, and Airong Qian. 2026. "Baicalein Attenuates Disuse-Driven Skeletal Senescence in Association with Gut Microbiota Modulation" Molecules 31, no. 18: 3336. https://doi.org/10.3390/molecules31183336
APA StyleZhao, X., Ren, T., Bai, W., Wang, H., Rahman, S. U., Deng, X., Ru, K., Zhang, G., Zhang, W., & Qian, A. (2026). Baicalein Attenuates Disuse-Driven Skeletal Senescence in Association with Gut Microbiota Modulation. Molecules, 31(18), 3336. https://doi.org/10.3390/molecules31183336

