Related Experiment Video
Updated: Aug 11, 2026

Training Persons with Spinal Cord Injury to Ambulate Using a Powered Exoskeleton
Published on: June 16, 2016
Vitamin D replacement therapy in persons with spinal cord injury
William A Bauman1, Nancy G Morrison, Ann M Spungen
1Veterans Affairs Rehabilitation Research and Development Center of Excellence, Veterans Affairs Medical Center, Bronx, New York 10468, USA. wabauman@earthlink.net
Background/Objective:
An increased prevalence of vitamin D deficiency has been reported in persons with chronic spinal cord injury (SCI), but treatment guidelines for replacement are not available. The purpose of this study was to evaluate two types of vitamin D therapy on calcium metabolism and vitamin D status in persons with SCI.
Methods:
Ten subjects with chronic SCI who were vitamin D deficient received 25 hydroxyvitamin D3 [25(OH)D], 50 microg twice a week, for 14 days (Study 1). Regardless of vitamin D status, 40 subjects received vitamin D3 800 IU (20 microg) daily for 12 months (Study 2). Supplemental calcium was administered. The response to therapy was determined by the effect upon serum 25(OH)D levels. Results are expressed as mean +/- standard deviation.
Results:
In Study 1, serum 25(OH)D levels increased by day 14 (8.7 +/- 2.1 vs 14.7 +/- 3.6 ng/mL; P < 0.0005). However, in 8 of 10 subjects, 25(OH)D levels were still below the absolute lower limit of normal. Serum calcium levels were not significantly different, but urinary calcium excretion increased (103 +/- 81 vs 184 +/- 145 mg/d; P < 0.01). Serum parathyroid hormone (PTH) levels decreased (35 +/- 26 vs 1 7 +/- 12 pg/ mL; P < 0.01). In Study 2, after 12 months of vitamin D supplementation, 9 subjects had an absolute and 23 had a relative vitamin D deficiency, compared with 33 and 6 subjects, respectively, at baseline. By 12 months, the 25(OH)D level increased (10.7 +/- 7.1 to 22.5 +/- 7.5 ng/mL; P < 0.0001) and the serum PTH level decreased (37 +/- 16 vs 25 +/- 11 pg/mL; P < 0.0001).
Conclusions:
Although 25(OH)D levels significantly increased in both studies, the replacement therapies employed were not sufficient to recommend for adoption for clinical use, indicating the need for higher doses and/or for longer periods of administration.
Related Concept Videos
Connective Tissue Cell Types
Fat cells (adipocytes), smooth muscle cells (myoblasts), and bone cells (osteoblasts) are some connective tissue cell types. Some immune system cells...
Role of Skin in Vitamin D Synthesis
The solar UV B rays (290-315 nm) are absorbed by the skin, and 7-dehydrocholesterol (provitamin D3) photolyzes it to previtamin D3, which undergoes a rapid transformation to vitamin D3(cholecalciferol).
Role of Vitamins in Maintaining Bone Health
Vitamin A
Vitamin A is involved in the process of bone remodeling. Retinoic acid, the active metabolite of Vitamin A, has nuclear receptors in osteoblasts and osteoclasts, which are involved in bone remodeling.
Vitamin B12
Vitamin B12 acts as a cofactor during the formation of osteoblast-related proteins, such as osteocalcin. Vitamin B12 plays a role...
Secondary Spinal Cord Injury llI: Pathophysiology

