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"Thyroid neoplasms"

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"Thyroid neoplasms"

Original Article

Background
This study evaluated the correlation between the degree and duration of thyroid-stimulating hormone (TSH) suppression and changes in bone mineral density (BMD) in patients who underwent surgery for differentiated thyroid carcinoma (DTC).
Methods
We included 65 women who underwent surgery for DTC and had at least two BMD measurements. Changes in BMD were statistically analyzed with a focus on postmenopausal women.
Results
The mean patient age was 52.2 years. During the follow-up period, 10 patients (15.4%) received osteoporosis treatment, and six (9.2%) experienced fractures. Analysis of 50 postmenopausal women revealed significant decreases in lumbar spine BMD (P=0.007), femoral neck BMD (P=0.008), and total hip BMD (P=0.010). Patients with TSH suppression <0.5 mU/L exhibited a 1.24%/y decrease in lumbar spine BMD, showing a marked reduction compared to a 0.33%/y decrease in BMD in the group with TSH ≥0.5 mU/L (P=0.025). Linear regression analysis comparing the duration of TSH suppression revealed a significant correlation with lumbar spine BMD (P<0.001). However, no correlation was observed between TSH suppression and decreased femoral neck BMD. Although not significant, the reduction in BMD in the lumbar spine was greater in the calcium and vitamin D non-supplementation group than in the supplementation group (1.31%/y vs. 0.71%/y; P=0.349).
Conclusions
Prolonged aggressive TSH suppression significantly affects lumbar spine BMD in patients with DTC. These findings highlight the need to balance TSH suppression with the risk of bone health deterioration, particularly in postmenopausal women.

Citations

Citations to this article as recorded by  Crossref logo
  • 1. TSH suppression attenuates the early efficacy of zoledronic acid in osteoporosis
    Yujuan Liu, Yilei Zhang, Meiye Li, Ying Qian, Zongjing Zhang, Zhaoshun Jiang, Wei Qu
    Archives of Osteoporosis.2026;[Epub]     CrossRef
  • 2,676 View
  • 48 Download
  • Crossref

Case Report

Ectopic parathyroid adenomas of the retropharyngeal space are relatively rare. Herein, we report a case of primary hyperparathyroidism (PHPT) secondary to a retropharyngeal parathyroid adenoma. A 22-year-old woman presented with elevated serum calcium and parathyroid hormone (PTH) levels, revealed during a medical check-up. The patient had a history of ureteral stones and a confirmed low bone mass. Neck 99mTechnetium-sestamibi singlephoton emission computed tomography (CT) and ultrasonography did not reveal any suspicious lesions. There was no evidence of hereditary PHPT based on the results of targeted gene sequencing. Surgical exploration was unsuccessful, and the PHPT persisted after the first surgery. Approximately a year after the failed operation, 18F-fluorocholine (FCH) positron emission tomography/CT (PET-CT) became available, and when performed, it revealed increased uptake in the retropharyngeal space of the right side of the neck. The results of parathyroid venous sampling were concordant with a >2-fold elevation of PTH level in the veins on the right side of the neck compared to the peripheral veins. The 1.8 cm-diameter mass was successfully removed resulting in an 87% reduction in intraoperative PTH level (198.0-26.5 pg/mL). Subsequently, normalizations of calcium and PTH levels were achieved. In summary, ectopic parathyroid adenomas, including retropharyngeal lesions, should also be suspected when investigating an elusive case of PHPT. 18F-FCH PET-CT can be a useful complementary modality for detecting culprit lesions.

Citations

Citations to this article as recorded by  Crossref logo
  • 1. Hypercalcemia episodes caused by ectopic parathyroid adenoma and subsequent gastrointestinal stromal tumor: A case report and literature review
    Yi-Ching Lin, Jen-Chieh Lee, Chen-Yu Wen, Wei-Yih Chiu
    Frontiers in Oncology.2025;[Epub]     CrossRef
  • 5,709 View
  • 71 Download
  • Crossref

Original Articles

Background

The effects of subclinical hyperthyroidism on bone mineral density (BMD) induced by thyroid-stimulating hormone (TSH) suppression therapy in patients with differentiated thyroid cancer (DTC) remains unclear. We conducted a meta-analysis to determine the influence of TSH suppression therapy on BMD.

Methods

We performed a systematic search to identify studies which included BMD measurement of femoral neck, total hip or lumbar spine in patients on TSH suppression therapy for DTC. Main outcome measures were difference of BMD of femoral neck, total hip or lumbar spine measured by dual energy X-ray absorptiometry between patients and controls.

Results

A systematic search yielded a total of 11 published controlled cross-sectional studies (including about 571 patients and 836 controls). TSH suppression therapy was associated with the lower BMD of total hip (weighted mean difference [WMD], −0.023; 95% confidence interval [CI], −0.047 to 0.000; P=0.050) and spine (WMD, −0.041; 95% CI, −0.057 to −0.026; P<0.001) in postmenopausal women with DTC, while it was not associated with that in premenopausal women and men with DTC.

Conclusions

Although the included studies were limited by small numbers, results suggested possible association between chronic TSH suppression therapy and the lower BMD of spine and total hip in postmenopausal women (but not in premenopausal women and men) with DTC. A large, well-designed study with long-term follow-up would provide further insight into the influence of TSH suppression therapy and loss of BMD.

Citations

Citations to this article as recorded by  Crossref logo
  • 1. TSH suppression attenuates the early efficacy of zoledronic acid in osteoporosis
    Yujuan Liu, Yilei Zhang, Meiye Li, Ying Qian, Zongjing Zhang, Zhaoshun Jiang, Wei Qu
    Archives of Osteoporosis.2026;[Epub]     CrossRef
  • 2. Korean Thyroid Association Guidelines on the Management of Differentiated Thyroid Cancers; Part II. Follow-up Surveillance after Initial Treatment 2026
    Eun Kyung Lee, Seung Heon Kang, Bon Seok Koo, Mijin Kim, Min Joo Kim, Bo Hyun Kim, Ji Won Kim, Dong Gyu Na, Sohyun Park, Ji-In Bang, Kyorim Back, Youngduk Seo, Young-Ik Son, Young Shin Song, Dong Yeob Shin, Jong-Hyuk Ahn, Hwa Young Ahn, So Won Oh, Ho-Ryun
    International Journal of Thyroidology.2026; 19(1): 1.     CrossRef
  • 3. Molecular pathways and emerging therapeutic strategies in advanced thyroid cancer: from targeted therapy to precision oncology
    Tanmoy Sarkar, Ruhi Arisha, Shivam Sengupta, Bharat Bhushan, Hitesh Kumar Dewangan
    Clinical and Translational Oncology.2026;[Epub]     CrossRef
  • 4. Effects of vitamin D3 and calcium supplementation on bone of young adults after thyroidectomy of differentiated thyroid carcinoma
    Lei Sun, Xiaoyun Lin, Naishi Li, Qian Zhang, Yan Jiang, Ou Wang, Weibo Xia, Xiaoping Xing, Xiaoyi Li, Mei Li
    Endocrine.2025; 88(3): 836.     CrossRef
  • 5. Photodynamic Therapy for Thyroid Cancer
    Julia Inglot, Joanna Katarzyna Strzelczyk, Dorota Bartusik-Aebisher, David Aebisher
    BioMed.2025; 5(1): 8.     CrossRef
  • 6. Prevalence of and Predictive Factors for Hypothyroidism Following Hemithyroidectomy
    Fadwa Cherni, Makram Tbini, Ines Riahi, Sarra Idriss, Rihab Laamouri, Mamia Ben Salah
    Ear, Nose & Throat Journal.2025;[Epub]     CrossRef
  • 7. Nano-approaches and Recent Advancements in Strategies to Combat Challenges Associated with Thyroid Cancer Therapies
    Gurmehar Singh, Jatin Rathee, Triveni, Neha Jain, Upendra Nagaich, Shreya Kaul, Manisha Pandey, Bapi Gorain
    Recent Patents on Nanotechnology.2025; 19(3): 381.     CrossRef
  • 8. The effect of menopausal hormone therapy on thyroid cancer survivors from the National Health Insurance Database in South Korea cohort
    Jin-Sung Yuk, Jin Li Lee, Yeonjin Shin, Gwan Hee Han, Sang-Hee Yoon, Myoung Hwan Kim, Ji Hyun Noh, Yujin Lee, Jungbin Kim, Sam-Youl Yoon, Hyunjin Cho, Keunho Yang, Byung Noe Bae, Ki Whan Kim, Geumhee Gwak
    European Journal of Obstetrics & Gynecology and Reproductive Biology.2025; 310: 113983.     CrossRef
  • 9. Risk of Osteoporotic Fractures among Patients with Thyroid Cancer: A Nationwide Population-Based Cohort Study
    Eu Jeong Ku, Won Sang Yoo, Yu Been Hwang, Subin Jang, Jooyoung Lee, Shinje Moon, Eun Kyung Lee, Hwa Young Ahn
    Endocrinology and Metabolism.2025; 40(2): 225.     CrossRef
  • 10. Effect of Psychosomatic Symptom Intervention on Psychosomatic Symptoms During Initial Treatment in Patients With Differentiated Thyroid Cancer
    Shuhua Luo, Xiaoxiao Wei, Jiaxin Zhao, Zhiqing Zhou, Lingling Zheng, Yuan Yang, Li Liu
    Cancer Nursing.2025;[Epub]     CrossRef
  • 11. Levothyroxine therapy in thyroidectomized patients: ongoing challenges and controversies
    Leonardo Rossi, Marinunzia Paternoster, Mattia Cammarata, Sohail Bakkar, Paolo Miccoli
    Frontiers in Endocrinology.2025;[Epub]     CrossRef
  • 12. Effect of Thyroid-Stimulating Hormone Suppression on Bone Mineral Density in Patients with Differentiated Thyroid Carcinoma: A Single Center Retrospective Study
    Meihua Jin, Won Sang Yoo
    Journal of Bone Metabolism.2025; 32(3): 221.     CrossRef
  • 13. Longitudinal Bone Density During TSH Suppression in Differentiated Thyroid Cancer: A Paired PET/CT Analysis
    Holger Einspieler, Hannah Klimpfinger, Song Xue, Aleksandar Debeljkovic, Bettina Reiterits, Bengt Hennig, Marcus Hacker, Georgios Karanikas
    Cancers.2025; 17(21): 3462.     CrossRef
  • 14. Association between serum TSH concentration and bone mineral density: an umbrella review
    Martyna Dziedzic, Michał Bonczar, Patryk Ostrowski, Bartłomiej Stachera, Dawid Plutecki, Monika Buziak-Bereza, Alicja Hubalewska-Dydejczyk, Jerzy Walocha, Mateusz Koziej
    Hormones.2024; 23(3): 547.     CrossRef
  • 15. The Effect of Thyrotropin Suppression on Survival Outcomes in Patients with Differentiated Thyroid Cancer: A Systematic Review and Meta-Analysis
    Sriram Gubbi, Mohammad Al-Jundi, Peter Foerster, Stephanie Cardenas, Gisela Butera, Sungyoung Auh, Elizabeth Chalmers Wright, Joanna Klubo-Gwiezdzinska
    Thyroid®.2024; 34(6): 674.     CrossRef
  • 16. Clinical inertia in thyrotropin suppressive therapy for low-risk differentiated thyroid cancer: A real-world experience at an endocrine center in Bangkok
    Yotsapon Thewjitcharoen, Waralee Chatchomchuan, Ekgaluck Wanothayaroj, Siriwan Butadej, Soontaree Nakasatien, Sirinate Krittiyawong, Rajata Rajatanavin, Thep Himathongkam
    Medicine.2024; 103(21): e38290.     CrossRef
  • 17. Korean Thyroid Association Guidelines on the Management of Differentiated Thyroid Cancers; Part II. Follow-up Surveillance after Initial Treatment 2024
    Mijin Kim, Ji-In Bang, Ho-Cheol Kang, Sun Wook Kim, Dong Gyu Na, Young Joo Park, Youngduk Seo, Young Shin Song, So Won Oh, Sang-Woo Lee, Eun Kyung Lee, Ji Ye Lee, Dong-Jun Lim, Ari Chong, Yun Jae Chung, Chae Moon Hong, Min Kyoung Lee, Bo Hyun Kim
    International Journal of Thyroidology.2024; 17(1): 115.     CrossRef
  • 18. How does Hashimoto’s thyroiditis affect bone metabolism?
    Jialu Wu, Hui Huang, Xijie Yu
    Reviews in Endocrine and Metabolic Disorders.2023; 24(2): 191.     CrossRef
  • 19. Levothyroxine suppressive therapy in differentiated thyroid cancer treatment
    Jan Drugda, Jan Čáp, Mikuláš Kosák, Filip Gabalec
    Vnitřní lékařství.2023; 69(2): 128.     CrossRef
  • 20. Evaluation and Management of Bone Health in Patients with Thyroid Diseases: A Position Statement of the Korean Thyroid Association
    A Ram Hong, Ho-Cheol Kang
    Endocrinology and Metabolism.2023; 38(2): 175.     CrossRef
  • 21. Factors related to bone mineral density in female patients receiving TSH-suppressive doses of levothyroxine for thyroid cancer
    Araya Boonyaleepan, Tarit Taerakul
    The ASEAN Journal of Radiology.2023; 24(2): 98.     CrossRef
  • 22. Risk factors for thyroid hormone replacement therapy after hemithyroidectomy and development of a predictive nomogram
    Zhen Cao, Rui Liu, Mengwei Wu, Xiequn Xu, Ziwen Liu
    Endocrine.2022; 76(1): 85.     CrossRef
  • 23. Bone‐density testing interval and transition to osteoporosis in differentiated thyroid carcinoma patients on TSH suppression therapy
    Hyunju Park, Jun Park, Heejin Yoo, Seonwoo Kim, Jang Hyun Koh, Jae Hwan Jee, Yong‐Ki Min, Jae Hoon Chung, Tae Hyuk Kim, Mira Kang, Sun Wook Kim
    Clinical Endocrinology.2022; 97(1): 130.     CrossRef
  • 24. Effects and Mechanisms of Rhus chinensis Mill. Fruits on Suppressing RANKL-Induced Osteoclastogenesis by Network Pharmacology and Validation in RAW264.7 Cells
    Yue Zheng, Lei Zhao, Junjie Yi, Shengbao Cai
    Nutrients.2022; 14(5): 1020.     CrossRef
  • 25. Evaluation and Management of Bone Health in Patients with Thyroid Diseases: a Position Statement from the Korean Thyroid Association
    A Ram Hong, Hwa Young Ahn, Bu Kyung Kim, Seong Hee Ahn, So Young Park, Min-Hee Kim, Jeongmin Lee, Sun Wook Cho, Ho-Cheol Kang
    International Journal of Thyroidology.2022; 15(1): 1.     CrossRef
  • 26. Effects of TSH suppressive therapy on bone mineral density (BMD) and bone turnover markers (BTMs) in patients with differentiated thyroid cancer in Northeast China: a prospective controlled cohort study
    Shiwei Wang, Yu Wang, Li Zhu, Liang He, Mutian Lv, Hao Zhang, Haoyu Wang, Fan Zhang, Yaxin Lai, Yushu Li, Zhongyan Shan, Weiping Teng
    Endocrine.2022; 79(1): 113.     CrossRef
  • 27. Application and prospect of trabecular bone score in differentiated thyroid cancer patients receiving thyrotropin suppression therapy
    Bingyu Ran, Feng Wei, Jian Gong, Hao Xu
    Frontiers in Endocrinology.2022;[Epub]     CrossRef
  • 28. The risk between thyrotropin suppression and bone mineral density in differentiated thyroid cancer
    Yang Zou, Bin Li, Xiaodong Wang, Jingxin Mao, Yanyan Zhang
    Medicine.2022; 101(48): e31991.     CrossRef
  • 29. Skeletal health in patients with differentiated thyroid carcinoma
    M. Cellini, M. Rotondi, M. L. Tanda, E. Piantanida, L. Chiovato, P. Beck-Peccoz, Andrea Lania, G. Mazziotti
    Journal of Endocrinological Investigation.2021; 44(3): 431.     CrossRef
  • 30. Trabecular bone score in women with differentiated thyroid cancer on long-term TSH-suppressive therapy
    B. É. C. A. Sousa, B. C. Silva, T. de Oliveira Guidotti, M. C. Pires, M. M. S. Soares, A. M. Kakehasi
    Journal of Endocrinological Investigation.2021; 44(10): 2295.     CrossRef
  • 31. Effects of thyroid-stimulating hormone suppression after thyroidectomy for thyroid cancer on bone mineral density in postmenopausal women: a systematic review and meta-analysis
    Donghee Kwak, Jane Ha, Yousun Won, Yeongkeun Kwon, Sungsoo Park
    BMJ Open.2021; 11(5): e043007.     CrossRef
  • 32. Effect of TSH Suppression Therapy on Bone Mineral Density in Differentiated Thyroid Cancer: A Systematic Review and Meta-analysis
    Eu Jeong Ku, Won Sang Yoo, Eun Kyung Lee, Hwa Young Ahn, Seung Hoon Woo, Jun Hwa Hong, Hyun Kyung Chung, Jin-Woo Park
    The Journal of Clinical Endocrinology & Metabolism.2021;[Epub]     CrossRef
  • 33. Thyrotropin, Hyperthyroidism, and Bone Mass
    Se-Min Kim, Vitaly Ryu, Sari Miyashita, Funda Korkmaz, Daria Lizneva, Sakshi Gera, Rauf Latif, Terry F Davies, Jameel Iqbal, Tony Yuen, Mone Zaidi
    The Journal of Clinical Endocrinology & Metabolism.2021;[Epub]     CrossRef
  • 34. TSH Suppression Therapy for Differentiated Thyroid Cancer May Be Associated with Lower Bone Density in Postmenopausal Women
    Sun Y. Lee
    Clinical Thyroidology.2021; 33(9): 406.     CrossRef
  • 35. Thyroid Hormone Diseases and Osteoporosis
    Alessandro P. Delitala, Angelo Scuteri, Carlo Doria
    Journal of Clinical Medicine.2020; 9(4): 1034.     CrossRef
  • 36. The Molecular Function and Clinical Role of Thyroid Stimulating Hormone Receptor in Cancer Cells
    Yu-De Chu, Chau-Ting Yeh
    Cells.2020; 9(7): 1730.     CrossRef
  • 37. Bone mineral density and its correlation with serum 25-hydroxyvitamin D levels in patients with hyperthyroidism
    Haixia Liu, Qihang Ma, Xinli Han, Wenwen Huang
    Journal of International Medical Research.2020;[Epub]     CrossRef
  • 38. TSH suppressive therapy and bone
    Alessandro Brancatella, Claudio Marcocci
    Endocrine Connections.2020; 9(7): R158.     CrossRef
  • 39. Integrated pathological cell fishing and network pharmacology approach to investigate main active components of Er-Xian decotion for treating osteoporosis
    Nani Wang, Pingcui Xu, Xuping Wang, Weixuan Yao, Zhongming Yu, Renjie Wu, Xiaowen Huang, Yuyang Si, Dan Shou
    Journal of Ethnopharmacology.2019; 241: 111977.     CrossRef
  • 40. Thyroid hormone therapy in differentiated thyroid cancer
    Giorgio Grani, Valeria Ramundo, Antonella Verrienti, Marialuisa Sponziello, Cosimo Durante
    Endocrine.2019; 66(1): 43.     CrossRef
  • 7,576 View
  • 100 Download
  • Crossref
Risk of Osteoporotic Fractures after Thyroid-stimulating Hormone Suppression Therapy in Patients with Thyroid Cancer
Youjin Lee, Byung-Ho Yoon, Seeyoun Lee, Youn Kyung Chung, Young-Kyun Lee
J Bone Metab 2019;26(1):45-50.
Published online February 28, 2019
DOI: https://doi.org/10.11005/jbm.2019.26.1.45
Background

The effects of subclinical hyperthyroidism on fracture risk induced by thyroid-stimulating hormone (TSH) suppression therapy in patients with thyroid cancer still remains controversial. We performed a meta-analysis and systematic review to evaluate the effects of TSH suppression therapy on osteoporotic fracture in patients with thyroid cancer.

Methods

We performed a systematic search to identify studies which included osteoporotic fractures (hip fracture and vertebral fracture) in patients on TSH suppression therapy for thyroid cancer. Main outcome measures were occurrence and risk of osteoporotic fractures including hip and vertebral fractures between patients and controls.

Results

A systematic search yielded a total of 8 studies appropriate for review which included osteoporotic fracture outcome in patients on TSH suppression therapy for thyroid cancer. Studies with larger number of subjects showed the higher risk of osteoporotic fracture in group with TSH suppression therapy, although studies with smaller sample size presented a similar risk of fracture with control group.

Conclusions

Although studies were limited by small numbers, results suggested possible association between chronic TSH suppression therapy and the increased risk of osteoporotic fractures in patients with thyroid cancer.

Citations

Citations to this article as recorded by  Crossref logo
  • 1. TSH suppression attenuates the early efficacy of zoledronic acid in osteoporosis
    Yujuan Liu, Yilei Zhang, Meiye Li, Ying Qian, Zongjing Zhang, Zhaoshun Jiang, Wei Qu
    Archives of Osteoporosis.2026;[Epub]     CrossRef
  • 2. The effect of replacement versus suppressive doses of levothyroxine on bone mineral density
    Mahmood Parham, Mohammad Bagherzadeh, Seyed Mohammad Hossein Miri Ashtiani, Bita Bitarafan, Elham Jafari, Mohammad Aghaali
    BMC Endocrine Disorders.2026;[Epub]     CrossRef
  • 3. Association between surgical extent and outcomes for low-risk 2–4 cm differentiated thyroid cancer in the 2025 ATA era: A SEER competing-risk analysis with nomogram
    Ziqiang Wang, Yangyang Xie, Weijun Zhang, Qiwei Du, Nian Liu, Xue Song
    Surgical Oncology.2026; 67: 102481.     CrossRef
  • 4. TSH suppression therapy from an individualized perspective: from mechanism to clinical decision-making
    Zhaoqing Li, Tengfei Wang, Jia Liu
    Frontiers in Endocrinology.2026;[Epub]     CrossRef
  • 5. Effects of vitamin D3 and calcium supplementation on bone of young adults after thyroidectomy of differentiated thyroid carcinoma
    Lei Sun, Xiaoyun Lin, Naishi Li, Qian Zhang, Yan Jiang, Ou Wang, Weibo Xia, Xiaoping Xing, Xiaoyi Li, Mei Li
    Endocrine.2025; 88(3): 836.     CrossRef
  • 6. Risk of Osteoporotic Fractures among Patients with Thyroid Cancer: A Nationwide Population-Based Cohort Study
    Eu Jeong Ku, Won Sang Yoo, Yu Been Hwang, Subin Jang, Jooyoung Lee, Shinje Moon, Eun Kyung Lee, Hwa Young Ahn
    Endocrinology and Metabolism.2025; 40(2): 225.     CrossRef
  • 7. The effect of menopausal hormone therapy on thyroid cancer survivors from the National Health Insurance Database in South Korea cohort
    Jin-Sung Yuk, Jin Li Lee, Yeonjin Shin, Gwan Hee Han, Sang-Hee Yoon, Myoung Hwan Kim, Ji Hyun Noh, Yujin Lee, Jungbin Kim, Sam-Youl Yoon, Hyunjin Cho, Keunho Yang, Byung Noe Bae, Ki Whan Kim, Geumhee Gwak
    European Journal of Obstetrics & Gynecology and Reproductive Biology.2025; 310: 113983.     CrossRef
  • 8. Effect of Thyroid-Stimulating Hormone Suppression on Bone Mineral Density in Patients with Differentiated Thyroid Carcinoma: A Single Center Retrospective Study
    Meihua Jin, Won Sang Yoo
    Journal of Bone Metabolism.2025; 32(3): 221.     CrossRef
  • 9. Effect of thyroid hormone replacement therapy on mortality rate in patients undergoing total or hemithyroidectomy for benign multinodular goitre
    Erik Nordenström, Jonas Ranstam, Anders Bergenfelz
    BJS Open.2024;[Epub]     CrossRef
  • 10. Impact of linkage level on inferences from big data analyses in health and medical research: an empirical study
    Bora Lee, Young-Kyun Lee, Sung Han Kim, HyunJin Oh, Sungho Won, Suk-Yong Jang, Ye Jin Jeon, Bit-Na Yoo, Jean-Kyung Bak
    BMC Medical Informatics and Decision Making.2024;[Epub]     CrossRef
  • 11. Outcomes and Trends of Treatments in High‐Risk Differentiated Thyroid Cancer
    Arash Abiri, Khodayar Goshtasbi, Sina J. Torabi, Edward C. Kuan, William B. Armstrong, Tjoson Tjoa, Yarah M. Haidar
    Otolaryngology–Head and Neck Surgery.2023; 168(4): 745.     CrossRef
  • 12. Fracture risk and assessment in adults with cancer
    Carrie Ye, William D. Leslie
    Osteoporosis International.2023; 34(3): 449.     CrossRef
  • 13. Analyses of the Association between Thyroid Cancer and Osteoporosis/Fracture Histories: A Cross-Sectional Study Using KoGES HEXA Data
    Young-Ju Jin, Chang-Myeon Song, Bum-Jung Park, Hyo-Geun Choi
    International Journal of Environmental Research and Public Health.2021; 18(9): 4732.     CrossRef
  • 14. A Multicenter, Randomized, Controlled Trial for Assessing the Usefulness of Suppressing Thyroid Stimulating Hormone Target Levels after Thyroid Lobectomy in Low to Intermediate Risk Thyroid Cancer Patients (MASTER): A Study Protocol
    Eun Kyung Lee, Yea Eun Kang, Young Joo Park, Bon Seok Koo, Ki-Wook Chung, Eu Jeong Ku, Ho-Ryun Won, Won Sang Yoo, Eonju Jeon, Se Hyun Paek, Yong Sang Lee, Dong Mee Lim, Yong Joon Suh, Ha Kyoung Park, Hyo-Jeong Kim, Bo Hyun Kim, Mijin Kim, Sun Wook Kim, Ka
    Endocrinology and Metabolism.2021; 36(3): 574.     CrossRef
  • 15. Diabetes Mellitus and Osteoporosis Correlation: Challenges and Hopes
    Moein Ala, Razieh Mohammad Jafari, Ahmad Reza Dehpour
    Current Diabetes Reviews.2020; 16(9): 984.     CrossRef
  • 6,024 View
  • 67 Download
  • Crossref
Effects of Thyrotropin Suppression on Bone Health in Menopausal Women with Total Thyroidectomy
Eun Heui Kim, Yun Kyung Jeon, Kyoungjune Pak, In-Joo Kim, Seong-Jang Kim, Seunghyeon Shin, Bo Hyun Kim, Sang Soo Kim, Byung-Joo Lee, Jeong-Gyu Lee, Tae Sik Goh, Keunyoung Kim
J Bone Metab 2019;26(1):31-38.
Published online February 28, 2019
DOI: https://doi.org/10.11005/jbm.2019.26.1.31
Background

This study examined the change in the trabecular bone score (TBS), areal bone mineral density (aBMD), and osteoporosis in postmenopausal women who underwent thyrotropin (TSH)-suppressive therapy for treating papillary thyroid cancer after a total thyroidectomy procedure.

Methods

We evaluated 36 postmenopausal women who received a total thyroidectomy for papillary thyroid cancer and were undergoing TSH suppressive therapy with levothyroxine. Postmenopausal women (n=94) matched for age and body mass index were recruited as healthy controls. The aBMD and TBS of the lumbar spine were compared between dual energy X-ray absorptiometry (DXA) at baseline and at follow-up after an average of 4.92 years.

Results

There was no significant difference in the rate of diagnoses of osteoporosis, osteopenia, or normal bone status between the 2 groups during the baseline DXA evaluation. However, the TBS was significantly lower whereas aBMD did not show significant difference at the time of baseline DXA measurement (1st DXA, 1.343±0.098 vs. 1.372±0.06317, P<0.001; 2nd DXA, 1.342±0.095 vs. 1.370±0.062, P<0.001). The TBS and aBMD did not differ significantly between the initial and follow-up DXA images in both groups of TSH suppressive patients and controls.

Conclusions

The average value of TBS and aBMD did not significantly change during the follow-up period. The TSH suppressive therapy was revealed as not a significant factor for the progressive deterioration of bone status during long term follow-up.

Citations

Citations to this article as recorded by  Crossref logo
  • 1. Effects of levothyroxine therapy on bone and mineral metabolism in hypothyroidism: a systematic review and meta-analysis
    Xiaotao Li, Taotao Zhang, Hongling Zhang, Shanshan Liu, Limin Tian
    BMC Endocrine Disorders.2025;[Epub]     CrossRef
  • 2. Risk of Osteoporotic Fractures among Patients with Thyroid Cancer: A Nationwide Population-Based Cohort Study
    Eu Jeong Ku, Won Sang Yoo, Yu Been Hwang, Subin Jang, Jooyoung Lee, Shinje Moon, Eun Kyung Lee, Hwa Young Ahn
    Endocrinology and Metabolism.2025; 40(2): 225.     CrossRef
  • 3. Effect of Thyroid-Stimulating Hormone Suppression on Bone Mineral Density in Patients with Differentiated Thyroid Carcinoma: A Single Center Retrospective Study
    Meihua Jin, Won Sang Yoo
    Journal of Bone Metabolism.2025; 32(3): 221.     CrossRef
  • 4. Association between serum TSH concentration and bone mineral density: an umbrella review
    Martyna Dziedzic, Michał Bonczar, Patryk Ostrowski, Bartłomiej Stachera, Dawid Plutecki, Monika Buziak-Bereza, Alicja Hubalewska-Dydejczyk, Jerzy Walocha, Mateusz Koziej
    Hormones.2024; 23(3): 547.     CrossRef
  • 5. The necessity of thyroid-stimulating hormone suppression therapy for low-risk differentiated thyroid carcinoma following hemithyroidectomy: A systematic review and meta-analysis
    Xinyu Wang, Yuqian Ye, Mizaniya Amdulla, Chenglong Ren, Yunhe Liu, Song Ni
    Heliyon.2024; 10(23): e40574.     CrossRef
  • 6. Rising Incidence and Comorbidities of Endogenous Hypothyroidism in Republic of Korea from 2004 to 2018: A Nationwide Population Study
    Chae Won Chung, Hwa Young Ahn, Sun Wook Cho, Ka Hee Yi
    Endocrinology and Metabolism.2024; 39(6): 891.     CrossRef
  • 7. Evaluation of Bone Health in Postmenopausal Women Using Long-Term Levothyroxine Treatment Due to Post-Procedural Hypothyroidism
    Mahmut Apaydin, Ferda Surel, Sinan Kazan
    International Journal of General Medicine.2024; Volume 17: 6139.     CrossRef
  • 8. Thyrotropin inhibits osteogenic differentiation of human periodontal ligament stem cells
    Yang Zeng, Ji‐Jun Deng, Qi‐Lan Jiang, Chun‐Lian Wang, Li Zhang, Tao Li, Jun Jiang
    Journal of Periodontal Research.2023; 58(3): 668.     CrossRef
  • 9. Exploring the oral‐gut microbiota during thyroid cancer: Factors affecting the thyroid functions and cancer development
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Change of Bone Mineral Density and Biochemical Markers of Bone Turnover in Patients on Suppressive Levothyroxine Therapy for Differentiated Thyroid Carcinoma
Chei Won Kim, Seokbo Hong, Se Hwan Oh, Jung Jin Lee, Joo Young Han, Seongbin Hong, So Hun Kim, Moonsuk Nam, Yong Seong Kim
J Bone Metab 2015;22(3):135-141.
Published online August 31, 2015
DOI: https://doi.org/10.11005/jbm.2015.22.3.135

Untreated hyperthyroidism and high-dose thyroid hormone are associated with osteoporosis, and increased bone mineral density (BMD) has been demonstrated in postmenopausal females with hypoparathyroidism. Studies on the effect of suppressive levothyroxine (LT4) therapy on BMD and bone metabolism after total thyroidectomy in patients with differentiated thyroid carcinoma have presented conflicting results, and few studies in relation to the status of hypoparathyroidism have been studied. One hundred postmenopausal women and 24 premenopausal women on LT4 suppression therapy were included in this study. BMD of lumbar spine and femur and bone turnover markers were measured at the baseline and during the follow-up period up to 18 months using dual energy X-ray absorptiometry. Biochemical marker of bone resorption was measured by urine deoxypyridinoline and bone formation by serum osteocalcin. The age ranged from 36 to 64 years old. Thyroid stimulating hormone (TSH) was suppressed during the study. The results showed that BMD of femur and lumbar spine were not significantly changed in both pre- and postmenopausal women except femur neck in postmenopausal women without hypoparathyroidism. Patients with hypoparathyroidism had higher BMD gain than those without hypoparathyroidism in total hip (1.25 vs. -1.18%, P=0.015). Biochemical markers of bone turnover, serum osteocalcin, and urine deoxypyridinoline did not show significant change. In conclusion, patients with well differentiated thyroid carcinoma are not at a great risk of bone loss after LT4 suppressive therapy. The state of hypoparathyroidism is associated with increased BMD, particularly in postmenopausal women.

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  • 3. Risk of Osteoporotic Fractures among Patients with Thyroid Cancer: A Nationwide Population-Based Cohort Study
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  • 6. The risk between thyrotropin suppression and bone mineral density in differentiated thyroid cancer
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    Medicine.2022; 101(48): e31991.     CrossRef
  • 7. Skeletal health in patients with differentiated thyroid carcinoma
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    Journal of Endocrinological Investigation.2021; 44(3): 431.     CrossRef
  • 8. Measurements of Bone Health after Thyroid-Stimulating Suppression Therapy in Postmenopausal Women with Differentiated Thyroid Carcinoma: Bone Mineral Density versus the Trabecular Bone Score
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  • 9. Bone Mineral Density in Adult Survivors of Pediatric Differentiated Thyroid Carcinoma: A Longitudinal Follow-Up Study
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    Thyroid®.2021; 31(11): 1707.     CrossRef
  • 10. Biochemical bone turnover markers in hormonal disorders in adults: a narrative review
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  • 11. Influence of Thyroid-stimulating Hormone Suppression Therapy on Bone Mineral Density in Patients with Differentiated Thyroid Cancer: A Meta-analysis
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  • 12. Trabecular bone score and bone mineral density in patients with postsurgical hypoparathyroidism after total thyroidectomy for differentiated thyroid carcinoma
    Sonsoles Guadalix Iglesias, María Luisa De Mingo Dominguez, Eduardo Ferrero Herrero, José Ignacio Martinez-Pueyo, Cristina Martín-Arriscado Arroba, Guillermo Martínez Diaz-Guerra, Federico Hawkins Carranza
    Surgery.2019; 165(4): 814.     CrossRef
  • 13. Effects of Thyrotropin Suppression on Bone Health in Menopausal Women with Total Thyroidectomy
    Eun Heui Kim, Yun Kyung Jeon, Kyoungjune Pak, In-Joo Kim, Seong-Jang Kim, Seunghyeon Shin, Bo Hyun Kim, Sang Soo Kim, Byung-Joo Lee, Jeong-Gyu Lee, Tae Sik Goh, Keunyoung Kim
    Journal of Bone Metabolism.2019; 26(1): 31.     CrossRef
  • 14. Risk of Osteoporotic Fractures after Thyroid-stimulating Hormone Suppression Therapy in Patients with Thyroid Cancer
    Youjin Lee, Byung-Ho Yoon, Seeyoun Lee, Youn Kyung Chung, Young-Kyun Lee
    Journal of Bone Metabolism.2019; 26(1): 45.     CrossRef
  • 15. Is Partial or Total Thyroidectomy Associated with Risk of Long‐Term Osteoporosis: A Nationwide Population‐Based Study
    Chien‐Ling Hung, Chih‐Ching Yeh, Pi‐Shan Sung, Chung‐Jye Hung, Chih‐Hsin Muo, Fung‐Chang Sung, I‐Ming Jou, Kuen‐Jer Tsai
    World Journal of Surgery.2018; 42(9): 2864.     CrossRef
  • 16. Skeletal Effects of Thyroid Hormones
    Bence Bakos, Istvan Takacs, Paula H. Stern, Peter Lakatos
    Clinical Reviews in Bone and Mineral Metabolism.2018; 16(2): 57.     CrossRef
  • 17. Kostné prejavy porúch štítnej žľazy
    Bakos Bence, István Takács, Stern H. Paula, Péter Lakatos
    Clinical Osteology.2018; 23(3): 100.     CrossRef
  • 18. Bone Mineral Density in Thyroid Cancer Patients: Data from the Korea National Health and Nutrition Examination Survey
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  • 20. Maigreur, os et risque fracturaire
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  • 21. TSH Suppression after Differentiated Thyroid Cancer Surgery and Osteoporosis
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