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Vitamin D Resistance: What It Is, How To Address It – Comprehensive Approach Integrating Genetic, Environmental, Nutritional Factors

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Understanding and Addressing Vitamin D Resistance:
A Comprehensive Approach Integrating Genetic, Environmental, and Nutritional Factors

Richard Z. Cheng, M.D., Ph.D.

Editor’s note: We’ve previously covered the challenges to traditional vitamin therapy by Covid therapies that were successful.  Even animals self medicate with plants that contain helpful compounds to meet their needs.  

Abstract

Vitamin D resistance, a condition where the body inadequately responds to vitamin D, can manifest in both hereditary and acquired forms. This paper examines the complexities of vitamin D resistance, highlighting the multifactorial nature of the condition, which involves genetic predispositions, lifestyle factors, infections, hormonal imbalances, and micronutrient deficiencies. Hereditary forms, though rare, typically involve mutations in the vitamin D receptor (VDR), while acquired resistance is increasingly common and often associated with chronic illnesses and environmental factors.

The paper underscores the importance of understanding these diverse contributing factors to effectively address vitamin D resistance. The concept of whole-cell nutrition, which emphasizes the synergy between various nutrients, is presented as a crucial approach to mitigating vitamin D resistance. Furthermore, the paper advocates for integrative orthomolecular medicine, which optimizes health through precise nutrient balance, lifestyle modifications, detoxification, and advanced treatments such as bioidentical hormonal balance, photo-biomodulation therapy, and stem cell transplantation. Through a holistic and integrative approach, it is possible to enhance the body’s ability to utilize vitamin D effectively, leading to improved health outcomes in conditions ranging from osteoporosis to autoimmune diseases.

1. Introduction

Vitamin D is essential for numerous biological functions, including calcium homeostasis, bone health, immune function, and cellular regulation. However, some individuals experience vitamin D resistance, where the body fails to respond adequately to normal or even elevated levels of vitamin D. This resistance can be categorized into two primary forms: hereditary and acquired. Understanding the underlying mechanisms and contributing factors is crucial for effective diagnosis and treatment.

2. Vitamin D Resistance, hereditary and acquired

While hereditary forms of vitamin D resistance, such as those caused by mutations in the vitamin D receptor (VDR), are rare, acquired vitamin D resistance is increasingly recognized and can be more common. This acquired form of resistance is often linked to chronic health conditions, lifestyle factors, and immune system dysregulation. Research suggests that a significant portion of individuals might not respond adequately to standard doses of vitamin D supplementation. Studies have shown that about 25% of individuals may be “low responders” to vitamin D, requiring higher or more individualized doses to achieve the desired physiological effects (1).

2.1 Hereditary Vitamin D Resistance

Hereditary vitamin D resistance, also known as Hereditary Vitamin D-Resistant Rickets (HVDRR), is a rare genetic disorder caused by mutations in the vitamin D receptor (VDR) gene. These mutations lead to a reduced ability of the VDR to bind to 1,25-dihydroxyvitamin D, the active form of vitamin D, or impair the receptor’s function, resulting in clinical manifestations such as rickets, hypocalcemia, and secondary hyperparathyroidism. HVDRR typically presents in early childhood, with symptoms including skeletal deformities, growth retardation, and in some cases, alopecia. Treatment usually involves high doses of calcitriol (the active form of vitamin D) and calcium supplements to overcome the resistance (2-7).

2.2 Acquired Vitamin D Resistance

Acquired vitamin D resistance occurs later in life and is not caused by genetic mutations. Instead, it results from a variety of external and internal factors that impair the body’s ability to utilize vitamin D effectively. This form of resistance is often associated with chronic illnesses, certain medications, or conditions that affect vitamin D metabolism. Recent research indicates that lifestyle factors including diet, sleep, exercise, toxins, nutrition, and even hormonal imbalance can all contribute to vitamin D resistance. Examples of acquired vitamin D resistance include chronic kidney disease, which impairs the conversion of vitamin D to its active form, and certain autoimmune conditions, where inflammation and immune dysregulation can alter vitamin D metabolism and receptor function.

2.3 Diagnosis of Vitamin D Resistance

Vitamin D resistance is a diagnosis of exclusion and involves a combination of clinical assessment, laboratory tests (including serum levels of 25(OH)D and PTH) and monitoring the response to vitamin D supplementation. Elevated PTH levels in conjunction with sufficient vitamin D status are particularly indicative of resistance (1).

3. Factors Contributing to Vitamin D Resistance

3.1 Genetic Factors

In addition to HVDRR, several genetic polymorphisms significantly influence vitamin D metabolism and receptor function, contributing to variations in vitamin D resistance.

3.2 Infections

Infections, particularly chronic ones, can contribute to vitamin D resistance. Dental infections, including those related to root canal-treated teeth (15,16), have been implicated in systemic inflammation that can alter vitamin D metabolism. Additionally, infections such as tuberculosis and chronic viral infections can interfere with VDR function and immune regulation, exacerbating vitamin D resistance (1,17-23).

3.3 Physiological Conditions

Obesity is a well-known factor contributing to vitamin D resistance. In obese individuals, vitamin D is sequestered in adipose tissue, reducing its bioavailability. This leads to lower circulating levels of vitamin D and an increased requirement for supplementation (24-26).

3.4 Prescription Drugs

Several prescription drugs can contribute to vitamin D resistance by either increasing the metabolism of vitamin D or interfering with its absorption.

3.5 Lifestyle Factors

Several lifestyle factors influence vitamin D metabolism and can contribute to vitamin D deficiency and resistance:

3.6 Insufficiency/Deficiency of Other Vitamins and Micronutrients

Vitamin D metabolism is closely linked with other micronutrients, and deficiencies in these can exacerbate vitamin D resistance:

4. Hormonal Influences on Vitamin D Resistance

4.1 Melatonin:

Melatonin, the hormone responsible for regulating sleep-wake cycles, has been shown to interact with vitamin D metabolism. Adequate melatonin levels may enhance vitamin D receptor expression, thereby reducing resistance. Disrupted melatonin production, often due to poor sleep, can negatively impact vitamin D metabolism.

4.2 HPA Axis

The hypothalamic-pituitary-adrenal (HPA) axis regulates the body’s stress response, and chronic stress can lead to dysregulation of this axis. Cortisol, the primary stress hormone, can inhibit vitamin D metabolism and reduce the expression of VDRs, contributing to resistance.

4.3 Thyroid

Thyroid hormone status significantly influences vitamin D metabolism and sensitivity, contributing to vitamin D resistance. This relationship is complex and multifaceted, involving both central and peripheral mechanisms.

4.4 Sex Hormones

5. Other Factors that Improve Vitamin D Resistance

5.1 Low Carb Ketogenic Diet Improves Vitamin D Resistance

Recent research indicates that low-carbohydrate diets, particularly ketogenic diets, may improve vitamin D metabolism and resistance.

5.2 Intermittent Fasting Improves Vitamin D Resistance

Recent studies indicate that intermittent fasting and prolonged fasting can improve vitamin D levels and its metabolism, particularly in individuals with various health conditions.

5.3 Near-Infrared (NIR) and Photobiomodulation Therapy (PBMT)

Recent research indicates that Near-Infrared (NIR) and Photobiomodulation Therapy (PBMT) may play a significant role in improving vitamin D resistance and overall health benefits, through mechanisms that enhance vitamin D synthesis and mitigate chronic disease factors.

5.4 Methylene Blue and Vitamin D Resistance

Research indicates that methylene blue may play a role in enhancing vitamin D resistance, particularly in the context of viral infections such as those caused by human cytomegalovirus (HCMV).

5.5 Stem Cells

The administration of stem cells in conjunction with vitamin D has shown promising results in improving vitamin D resistance, particularly in the context of metabolic and inflammatory conditions, by addressing oxidative stress, enhancing differentiation, and regulating immune responses.

6. Conclusion

Vitamin D resistance is a complex condition that can arise from a combination of genetic, physiological, and lifestyle factors. These factors include poor dietary habits (such as diets high in carbohydrates, seed oils rich in omega-6 fats, and ultra-processed foods), inadequate sleep, lack of exercise and sun exposure, certain prescription medications, exposure to heavy metals and chemical toxins, vitamin and micronutrient deficiencies, hormonal imbalances, and chronic infections. Understanding and addressing these interconnected factors is essential for overcoming vitamin D resistance and ensuring optimal vitamin D status for health.

Vitamin D resistance, whether hereditary or acquired, is influenced by a myriad of factors. This paper emphasizes the importance of a holistic approach that considers the complex interactions between vitamin D and other essential nutrients. The concept of whole-cell nutrition, which highlights the synergy between various vitamins, minerals, and nutrients, is critical in addressing and potentially mitigating vitamin D resistance. Integrative orthomolecular medicine, which focuses on optimizing health through precise nutrient balance, as well as incorporating healthy diets, other lifestyle factors and hormonal balance, presents a promising strategy for managing vitamin D resistance. By adopting a comprehensive, integrative approach, we can enhance the body’s ability to utilize vitamin D effectively, leading to improved health outcomes.

The causes of vitamin D resistance discussed in this paper are also key contributors to many other chronic health conditions. Vitamin D resistance is just one mechanism through which these underlying issues can impair health. Achieving optimal health requires a comprehensive approach that includes recognizing, identifying, and managing these root causes, in addition to the intermediary mechanisms and their clinical manifestations.

Integrative orthomolecular medicine should include not only optimal nutrition but also essential interventions such as lifestyle modifications, detoxification, hormonal balance, and advanced treatments like stem cell transplantation and other biological therapies.

With this holistic approach, we have developed an Integrative Orthomolecular Medicine Protocol (126) and have successfully managed a wide range of diseases. Our protocol includes regular testing and vitamin D supplementation, along with a healthy lifestyle that emphasizes a balanced diet low in carbohydrates, omega-6 seed oils, and ultra-processed foods, as well as intermittent fasting, exercise, sun exposure, and quality sleep. We also prioritize optimal nutrition, hormonal balance, detoxification, correction of other root causes, and the application of advanced therapies such as near-infrared photo-biomodulation therapy (PBMT), methylene blue, and stem cell transplantation.

Through this approach, we have observed significant improvements and, in many cases, complete reversal of chronic diseases, including osteoporosis, atherosclerotic cardiovascular disease (ASCVD), type 2 diabetes mellitus (T2DM), cancer, autoimmune diseases, mood disorders, and psychiatric conditions.

 

References:

1. Lemke D, Klement RJ, Schweiger F, Schweiger B, Spitz J. Vitamin D Resistance as a Possible Cause of Autoimmune Diseases: A Hypothesis Confirmed by a Therapeutic High-Dose Vitamin D Protocol. Front Immunol. 2021;12:655739.

2. Rebelos E, Tentolouris N, Jude E. The Role of Vitamin D in Health and Disease: A Narrative Review on the Mechanisms Linking Vitamin D with Disease and the Effects of Supplementation. Drugs. 2023 Jun;83(8):665-85.

3. Ghazi AA, Zadeh-Vakili A, Zarif Yeganeh M, Alamdari S, Amouzegar A, Khorsandi AA, et al. Hereditary Vitamin D Resistant Rickets: Clinical, Laboratory, and Genetic Characteristics of 2 Iranian Siblings. Int J Endocrinol Metab. 2017 Jul 31;15(3):e12384.

4. Nicolescu RC, Lombet J, Cavalier E. Vitamin D-Resistant Rickets and Cinacalcet-One More Favorable Experience. Front Pediatr [Internet]. 2018 Nov 28 [cited 2024 Aug 23];6. Available from: https://www.frontiersin.org/journals/pediatrics/articles/10.3389/fped.2018.00376/full

5. Ahmad N, Ansari SA, Aleysae NA, Heaphy ELG, Sobaihi MM, Alghamdi BA, et al. Hereditary vitamin D resistant rickets (HVDRR) case series: phenotype, genotype, conventional treatment, and adjunctive cinacalcet therapy. Pediatr Endocrinol Diabetes Metab. 2024;30(2):74-83.

6. Malloy PJ, Pike JW, Feldman D. The vitamin D receptor and the syndrome of hereditary 1,25-dihydroxyvitamin D-resistant rickets. Endocr Rev. 1999 Apr;20(2):156-88.

7. Ma NS, Malloy PJ, Pitukcheewanont P, Dreimane D, Geffner ME, Feldman D. Hereditary vitamin D resistant rickets: identification of a novel splice site mutation in the vitamin D receptor gene and successful treatment with oral calcium therapy. Bone. 2009 Oct;45(4):743-6.

8. Avioli LV, Birge SJ, Slatopolsky E. The nature of vitamin D resistance of patients with chronic renal disease. Arch Intern Med. 1969 Oct;124(4):451-4.

9. Johnson LE. MSD Manual Professional Edition. [cited 2024 Aug 30]. Vitamin D Deficiency and Dependency – Nutritional Disorders. Available from: https://www.msdmanuals.com/professional/nutritional-disorders/vitamin-deficiency-dependency-and-toxicity/vitamin-d-deficiency-and-dependency

10. Kenny CM, Murphy CE, Boyce DS, Ashley DM, Jahanmir J. Things We Do for No ReasonTM: Calculating a “Corrected Calcium” Level. J Hosp Med. 2021 Aug;16(8):499-501.

11. Krasniqi E, Boshnjaku A, Wagner KH, Wessner B. Association between Polymorphisms in Vitamin D Pathway-Related Genes, Vitamin D Status, Muscle Mass and Function: A Systematic Review. Nutrients. 2021 Sep 4;13(9):3109.

12. Galvão AA, de Araújo Sena F, Andrade Belitardo EMM de, de Santana MBR, Costa GN de O, Cruz ÁA, et al. Genetic polymorphisms in vitamin D pathway influence 25(OH)D levels and are associated with atopy and asthma. Allergy Asthma Clin Immunol Off J Can Soc Allergy Clin Immunol. 2020;16:62.

13. Alathari BE, Sabta AA, Kalpana CA, Vimaleswaran KS. Vitamin D pathway-related gene polymorphisms and their association with metabolic diseases: A literature review. J Diabetes Metab Disord. 2020 Dec;19(2):1701-29.

14. Pineda-Lancheros LE, Gálvez-Navas JM, Rojo-Tolosa S, Membrive-Jiménez C, Valverde-Merino MI, Martínez-Martínez F, et al. Polymorphisms in VDR, CYP27B1, CYP2R1, GC and CYP24A1 Genes as Biomarkers of Survival in Non-Small Cell Lung Cancer: A Systematic Review. Nutrients. 2023 Mar 21;15(6):1525.

15. Kulacz R, Levy T. The Toxic tooth. How a Root Canal could Be Making You Sick. MedFox Publishing; 2014.

16. Levy TE. Hidden Epidemic: Silent Oral Infections Cause Most Heart Attacks and Breast Cancers: Levy, JD: 9780983772873: Amazon.com: Books [Internet]. [cited 2022 Apr 14]. Available from: https://www.amazon.com/Hidden-Epidemic-Infections-Attacks-Cancers/dp/0983772878/

17. Álvarez-Mercado AI, Mesa MD, Gil Á. Vitamin D: Role in chronic and acute diseases. Encycl Hum Nutr. 2023;535-44.

18. Taha R, Abureesh S, Alghamdi S, Hassan RY, Cheikh MM, Bagabir RA, et al. The Relationship Between Vitamin D and Infections Including COVID-19: Any Hopes? Int J Gen Med. 2021 Jul 24;14:3849-70.

19. Cutuli SL, Ferrando ES, Cammarota F, Franchini E, Caroli A, Lombardi G, et al. Update on vitamin D role in severe infections and sepsis. J Anesth Analg Crit Care. 2024 Jan 23;4(1):4.

20. Yin K, Agrawal DK. Vitamin D and inflammatory diseases. J Inflamm Res. 2014 May 29;7:69-87.

21. Mousa A, Misso M, Teede H, Scragg R, de Courten B. Effect of vitamin D supplementation on inflammation: protocol for a systematic review. BMJ Open. 2016 Apr 5;6(4):e010804.

22. Krajewska M, Witkowska-Sędek E, Rumińska M, Stelmaszczyk-Emmel A, Sobol M, Majcher A, et al. Vitamin D Effects on Selected Anti-Inflammatory and Pro-Inflammatory Markers of Obesity-Related Chronic Inflammation. Front Endocrinol. 2022;13:920340.

23. Soares MJ, Pannu PK, Calton EK, Reid CM, Hills AP. Vitamin D status and calcium intake in systemic inflammation, insulin resistance and the metabolic syndrome: An update on current evidence. Trends Food Sci Technol. 2017 Apr 1;62:79-90.

24. Williams SE. Vitamin D supplementation: Pearls for practicing clinicians. Cleve Clin J Med. 2022 Mar 1;89(3):154-60.

25. Moukayed M, Grant WB. Linking the metabolic syndrome and obesity with vitamin D status: risks and opportunities for improving cardiometabolic health and well-being. Diabetes Metab Syndr Obes Targets Ther. 2019 Aug 16;12:1437-47.

26. Paschou SA, Marina LV, Spartalis E, Anagnostis P, Alexandrou A, Goulis DG, et al. Therapeutic strategies for type 2 diabetes mellitus in women after menopause. Maturitas. 2019 Aug;126:69-72.

27. Wakeman M. A Literature Review of the Potential Impact of Medication on Vitamin D Status. Risk Manag Healthc Policy. 2021;14:3357-81.

28. Jung JW, Park SY, Kim H. Drug-Induced Vitamin Deficiency. Ann Clin Nutr Metab. 2022 Jun 1;14(1):20-31.

29. Liao S. Are Your Medications Causing Vitamin D Deficiency? [Internet]. Available from: https://www.healthcentral.com/article/getting-the-most-from-your-vitamin-d-drugs-that-interfere-with-its-absorption

30. Tangpricha V. Vitamin D Deficiency and Related Disorders [Internet]. 2024. Available from: https://emedicine.medscape.com/article/128762-overview?form=fpf

31. Lin CH, Lin PS, Lee MS, Lin CY, Sung YH, Li ST, et al. Associations between Vitamin D Deficiency and Carbohydrate Intake and Dietary Factors in Taiwanese Pregnant Women. Med Kaunas Lith. 2023 Jan 3;59(1):107.

32. Detopoulou P, Papadopoulou SK, Voulgaridou G, Dedes V, Tsoumana D, Gioxari A, et al. Ketogenic Diet and Vitamin D Metabolism: A Review of Evidence. Metabolites. 2022 Dec 19;12(12):1288.

33. Bolesławska I, Kowalówka M, Dobrzyńska M, Karaźniewicz-Łada M, Przysławski J. Differences in the Concentration of Vitamin D Metabolites in Plasma Due to the Low-Carbohydrate-High-Fat Diet and the Eastern European Diet-A Pilot Study. Nutrients. 2021 Aug 13;13(8):2774.

34. Volek JS, Yancy WS, Gower BA, Phinney SD, Slavin J, Koutnik AP, et al. Expert consensus on nutrition and lower-carbohydrate diets: An evidence- and equity-based approach to dietary guidance. Front Nutr. 2024;11:1376098.

35. Mousavi SE, Amini H, Heydarpour P, Amini Chermahini F, Godderis L. Air pollution, environmental chemicals, and smoking may trigger vitamin D deficiency: Evidence and potential mechanisms. Environ Int. 2019 Jan;122:67-90.

36. Altowijri A, Alloubani A, Abdulhafiz I, Saleh A. Impact of Nutritional and Environmental Factors on Vitamin D Deficiency. Asian Pac J Cancer Prev APJCP. 2018 Sep 26;19(9):2569-74.

37. Nascimento LM, Lavôr LC de C, Sousa PV de L, Luzia LA, Viola PC de AF, Paiva A de A, et al. Consumption of ultra-processed products is associated with vitamin D deficiency in Brazilian adults and elderly. Br J Nutr. 2023 Dec 28;130(12):2198-205.

38. Louzada ML da C, Martins APB, Canella DS, Baraldi LG, Levy RB, Claro RM, et al. Impact of ultra-processed foods on micronutrient content in the Brazilian diet. Rev Saude Publica. 2015;49:45.

39. García-Blanco L, de la O V, Santiago S, Pouso A, Martínez-González MÁ, Martín-Calvo N. High consumption of ultra-processed foods is associated with increased risk of micronutrient inadequacy in children: The SENDO project. Eur J Pediatr. 2023 Aug;182(8):3537-47.

40. Menezes CA, Magalhães LB, da Silva JT, da Silva Lago RMR, Gomes AN, Ladeia AMT, et al. Ultra-Processed Food Consumption Is Related to Higher Trans Fatty Acids, Sugar Intake, and Micronutrient-Impaired Status in Schoolchildren of Bahia, Brazil. Nutrients. 2023 Jan 12;15(2):381.

41. Mariamenatu AH, Abdu EM. Overconsumption of Omega-6 Polyunsaturated Fatty Acids (PUFAs) versus Deficiency of Omega-3 PUFAs in Modern-Day Diets: The Disturbing Factor for Their “Balanced Antagonistic Metabolic Functions” in the Human Body. J Lipids. 2021;2021:8848161.

42. Cadario F. Vitamin D and ω-3 Polyunsaturated Fatty Acids towards a Personalized Nutrition of Youth Diabetes: A Narrative Lecture. Nutrients. 2022 Nov 18;14(22):4887.

43. Schulze MB, Minihane AM, Saleh RNM, Risérus U. Intake and metabolism of omega-3 and omega-6 polyunsaturated fatty acids: nutritional implications for cardiometabolic diseases. Lancet Diabetes Endocrinol. 2020 Nov;8(11):915-30.

44. Zhang J, Cao ZB. Exercise: A Possibly Effective Way to Improve Vitamin D Nutritional Status. Nutrients. 2022 Jun 27;14(13):2652.

45. Dzik KP, Grzywacz T, Łuszczyk M, Kujach S, Flis DJ, Kaczor JJ. Single bout of exercise triggers the increase of vitamin D blood concentration in adolescent trained boys: a pilot study. Sci Rep. 2022 Feb 3;12(1):1825.

46. Colorado University. Exercise and Vitamin D [Internet]. Available from: https://chhs.source.colostate.edu/exercise-and-vitamin-d/

47. Wiciński M, Adamkiewicz D, Adamkiewicz M, Śniegocki M, Podhorecka M, Szychta P, et al. Impact of Vitamin D on Physical Efficiency and Exercise Performance-A Review. Nutrients. 2019 Nov 19;11(11):2826.

48. Abboud M. Vitamin D Supplementation and Sleep: A Systematic Review and Meta-Analysis of Intervention Studies. Nutrients. 2022 Mar 3;14(5):1076.

49. Gao Q, Kou T, Zhuang B, Ren Y, Dong X, Wang Q. The Association between Vitamin D Deficiency and Sleep Disorders: A Systematic Review and Meta-Analysis. Nutrients. 2018 Oct 1;10(10):1395.

50. Zhou R, Chen Z, Yang T, Gu H, Yang X, Cheng S. Vitamin D Deficiency Exacerbates Poor Sleep Outcomes with Endocrine-Disrupting Chemicals Exposure: A Large American Population Study. Nutrients. 2024 Apr 26;16(9):1291.

51. Radlberger RF, Kunz AB. Vitamin D deficiency promoting non-24 h sleep-wake disorder: a case report. Front Neurol. 2023;14:1141835.

52. Larsen AU, Hopstock LA, Jorde R, Grimnes G. No improvement of sleep from vitamin D supplementation: insights from a randomized controlled trial. Sleep Med X. 2021 Dec;3:100040.

53. Chen Q, Zhao L. Vitamin C and vitamin D3 alleviate metabolic-associated fatty liver disease by regulating the gut microbiota and bile acid metabolism via the gut-liver axis – PubMed [Internet]. [cited 2024 Aug 23]. Available from: https://pubmed.ncbi.nlm.nih.gov/37089915/

54. Carr AC, Maggini S. Vitamin C and Immune Function. Nutrients. 2017 Nov 3;9(11):1211.

55. Cheng RZ, Passwater M, Yang T. Consideration of host nutritional status as a mitigating factor against current and future pandemics: a review of nutrient studies and experiences with infectious diseases including Covid-19. Med Res Arch [Internet]. 2023 Sep 28 [cited 2024 Aug 23];11(9). Available from: https://esmed.org/MRA/mra/article/view/4419

56. Bae M, Kim H. Mini-Review on the Roles of Vitamin C, Vitamin D, and Selenium in the Immune System against COVID-19. Mol Basel Switz. 2020 Nov 16;25(22):5346.

57. Farag HAM, Hosseinzadeh-Attar MJ, Muhammad BA, Esmaillzadeh A, Bilbeisi AHE. Comparative effects of vitamin D and vitamin C supplementations with and without endurance physical activity on metabolic syndrome patients: a randomized controlled trial. Diabetol Metab Syndr. 2018;10:80.

58. Herrmann W, Kirsch SH, Kruse V, Eckert R, Gräber S, Geisel J, et al. One year B and D vitamins supplementation improves metabolic bone markers. Clin Chem Lab Med. 2013 Mar 1;51(3):639-47.

59. Rahman A, Al-Taiar A, Shaban L, Al-Sabah R, Mojiminiyi O. Plasma 25-hydroxyvitamin D is positively associated with folate and vitamin B12 levels in adolescents. Nutr Res N Y N. 2020 Jul;79:87-99.

60. Konuksever D, Yücel Karakaya SP. Evaluation of correlation between vitamin D with vitamin B12 and folate in children. Nutr Burbank Los Angel Cty Calif. 2022;99-100:111683.

61. Wang L, Zhou C, Yu H, Hao L, Ju M, Feng W, et al. Vitamin D, Folic Acid and Vitamin B12 Can Reverse Vitamin D Deficiency-Induced Learning and Memory Impairment by Altering 27-Hydroxycholesterol and S-Adenosylmethionine. Nutrients. 2022 Dec 27;15(1):132.

62. van Ballegooijen AJ, Pilz S, Tomaschitz A, Grübler MR, Verheyen N. The Synergistic Interplay between Vitamins D and K for Bone and Cardiovascular Health: A Narrative Review. Int J Endocrinol. 2017;2017:7454376.

63. Rupa Health. The Science Behind Taking Vitamin D and K Together [Internet]. Available from: https://www.rupahealth.com/post/the-science-behind-taking-vitamin-d-and-k-together-for-enhanced-health-outcomes

64. Nutriadvanced. Thinking of Supplementing with Vitamin D? …Think Vitamin K2 Too! [Internet]. Available from: https://www.nutriadvanced.co.uk/news/thinking-of-supplementing-with-vitamin-d-think-vitamin-k2-too/

65. Aguayo-Ruiz JI, García-Cobián TA, Pascoe-González S, Sánchez-Enríquez S, Llamas-Covarrubias IM, García-Iglesias T, et al. Effect of supplementation with vitamins D3 and K2 on undercarboxylated osteocalcin and insulin serum levels in patients with type 2 diabetes mellitus: a randomized, double-blind, clinical trial. Diabetol Metab Syndr. 2020;12:73.

66. Healthline. Is Vitamin D Harmful Without Vitamin K? [Internet]. Available from: https://www.healthline.com/nutrition/vitamin-d-and-vitamin-k

67. Sizar O, Khare S, Goyal A, Givler A. Vitamin D Deficiency. In: StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing; 2024 [cited 2024 Aug 24]. Available from: http://www.ncbi.nlm.nih.gov/books/NBK532266/

68. Wimalawansa SJ. Physiological Basis for Using Vitamin D to Improve Health. Biomedicines. 2023 May 26;11(6):1542.

69. Narayanam H, Chinni SV, Samuggam S. The Impact of Micronutrients-Calcium, Vitamin D, Selenium, Zinc in Cardiovascular Health: A Mini Review. Front Physiol. 2021;12:742425.

70. Minich DM, Henning M, Darley C, Fahoum M, Schuler CB, Frame J. Is Melatonin the “Next Vitamin D”?: A Review of Emerging Science, Clinical Uses, Safety, and Dietary Supplements. Nutrients. 2022 Sep 22;14(19):3934.

71. Ghareghani M, Reiter RJ, Zibara K, Farhadi N. Latitude, Vitamin D, Melatonin, and Gut Microbiota Act in Concert to Initiate Multiple Sclerosis: A New Mechanistic Pathway. Front Immunol. 2018;9:2484.

72. İncedal Sonkaya Z, Yazgan B, Kurtgöz A, Demir AD, İncedal Irgat S. Examination of correlations between vitamin D and melatonin levels with sleep among women aged 18-49 years. Cent Eur J Public Health. 2023 Mar;31(1):19-24.

73. Sahakyan G. The role of Vitamin D in treatment of Chronic Insomnia with Melatonin (P5.320). Neurology. 2018 Apr 10;90(15_supplement):P5.320.

74. Fang N, Hu C, Sun W, Xu Y, Gu Y, Wu L, et al. Identification of a novel melatonin-binding nuclear receptor: Vitamin D receptor. J Pineal Res. 2020 Jan;68(1):e12618.

75. Liu L, Labani N, Cecon E, Jockers R. Melatonin Target Proteins: Too Many or Not Enough? Front Endocrinol. 2019;10:791.

76. Menezes-Júnior LAA de, Sabião T da S, Moura SS de, Batista AP, Menezes MC de, Carraro JCC, et al. The role of interaction between vitamin D and VDR FokI gene polymorphism (rs2228570) in sleep quality of adults. Sci Rep. 2024 Apr 7;14(1):8141.

77. Al Refaie A, Baldassini L, De Vita M, Gonnelli S, Caffarelli C. Vitamin D and adrenal gland: Myth or reality? A systematic review. Front Endocrinol. 2022;13:1001065.

78. McNally JD, Doherty DR, Lawson ML, Al-Dirbashi OY, Chakraborty P, Ramsay T, et al. The relationship between vitamin D status and adrenal insufficiency in critically ill children. J Clin Endocrinol Metab. 2013 May;98(5):E877-881.

79. Holtorf Medical Group. Adrenal Dysfunction [Internet]. Available from: https://holtorfmed.com/articles/nutrient-deficiencies-associated-with-adrenal-dysfunction/

80. Muscogiuri G, Altieri B, Penna-Martinez M, Badenhoop K. Focus on vitamin D and the adrenal gland. Horm Metab Res Horm Stoffwechselforschung Horm Metab. 2015 Apr;47(4):239-46.

81. Maidana P, Fritzler A, Mocarbel Y, Perez Lana MB, González D, Rosales M, et al. Association Between Vitamin D and Adrenal Parameters with Metabolic and Inflammatory Markers in Polycystic Ovary Syndrome. Sci Rep. 2019 Mar 8;9(1):3968.

82. Appunni S, Rubens M, Ramamoorthy V, Saxena A, Tonse R, Veledar E, et al. Association between vitamin D deficiency and hypothyroidism: results from the National Health and Nutrition Examination Survey (NHANES) 2007-2012. BMC Endocr Disord. 2021 Nov 12;21(1):224.

83. Ashok T, Palyam V, Azam AT, Odeyinka O, Alhashimi R, Thoota S, et al. Relationship Between Vitamin D and Thyroid: An Enigma. Cureus. 2022 Jan;14(1):e21069.

84. Safari S, Rafraf M, Malekian M, Molani-Gol R, Asghari-Jafarabadi M, Mobasseri M. Effects of vitamin D supplementation on metabolic parameters, serum irisin and obesity values in women with subclinical hypothyroidism: a double-blind randomized controlled trial. Front Endocrinol. 2023;14:1306470.

85. Babić Leko M, Jureško I, Rozić I, Pleić N, Gunjača I, Zemunik T. Vitamin D and the Thyroid: A Critical Review of the Current Evidence. Int J Mol Sci. 2023 Feb 10;24(4):3586.

86. ThyroidUK. Vitamin D Deficiency [Internet]. Available from: https://thyroiduk.org/if-you-are-hypothyroid/the-importance-of-vitamins-and-minerals-hypo/vitamin-d/

87. British Thyroid Foundation. Vitamin D and thyroid disease [Internet]. Available from: https://www.btf-thyroid.org/vitamin-d-and-thyroid-disease

88. Paloma Health. Relationship Between Low Vitamin D and Hypothyroidism [Internet]. Available from: https://www.palomahealth.com/learn/vitamin-d-hypothyroidism

89. Chen S, Yang W, Guo Z, Lv X, Zou Y. Association between serum vitamin D levels and sensitivity to thyroid hormone indices: a cross-sectional observational study in NHANES 2007-2012. Front Endocrinol. 2023;14:1243999.

90. Zhou L, Wang Y, Su J, An Y, Liu J, Wang G. Vitamin D Deficiency Is Associated with Impaired Sensitivity to Thyroid Hormones in Euthyroid Adults. Nutrients. 2023 Aug 24;15(17):3697.

91. Vassalle C, Parlanti A, Pingitore A, Berti S, Iervasi G, Sabatino L. Vitamin D, Thyroid Hormones and Cardiovascular Risk: Exploring the Components of This Novel Disease Triangle. Front Physiol. 2021;12:722912.

92. Mackawy AMH, Al-Ayed BM, Al-Rashidi BM. Vitamin d deficiency and its association with thyroid disease. Int J Health Sci. 2013 Nov;7(3):267-75.

93. Kinuta K, Tanaka H, Moriwake T, Aya K, Kato S, Seino Y. Vitamin D is an important factor in estrogen biosynthesis of both female and male gonads. Endocrinology. 2000 Apr;141(4):1317-24.

94. News Medical Life Sciences. The Role of Vitamin D in Hormonal Balance [Internet]. Available from: https://www.news-medical.net/health/The-Role-of-Vitamin-D-in-Hormonal-Balance.aspx

95. Elara Care. Importance of Vitamin D for Female Hormones [Internet]. Available from: https://elara.care/hormones/importance-of-vitamin-d-for-female-hormones/

96. Mei Z, Hu H, Zou Y, Li D. The role of vitamin D in menopausal women’s health. Front Physiol. 2023;14:1211896.

97. Chu C, Tsuprykov O, Chen X, Elitok S, Krämer BK, Hocher B. Relationship Between Vitamin D and Hormones Important for Human Fertility in Reproductive-Aged Women. Front Endocrinol. 2021;12:666687.

98. Kolcsár M, Berecki B, Gáll Z. Relationship between Serum 25-Hydroxyvitamin D Levels and Hormonal Status in Infertile Women: A Retrospective Study. Diagn Basel Switz. 2023 Sep 22;13(19):3024.

99. MacLean JA, Hayashi K. Progesterone Actions and Resistance in Gynecological Disorders. Cells. 2022 Feb 13;11(4):647.

100. Barbonetti A, Vassallo MRC, Felzani G, Francavilla S, Francavilla F. Association between 25(OH)-vitamin D and testosterone levels: Evidence from men with chronic spinal cord injury. J Spinal Cord Med. 2016 May;39(3):246-52.

102. Damas-Fuentes M, Boughanem H, Molina-Vega M, Tinahones FJ, Fernández-García JC, Macías-González M. 25-hydroxyvitamin D and testosterone levels association through body mass index: A cross-sectional study of young men with obesity. Front Endocrinol. 2022;13:960222.

103. Testosterone Centers of Texas. Vitamin D and Low Testosterone: Does Research Support a Connection? [Internet]. Available from: https://tctmed.com/vitamin-d-low-testosterone/

101. Lerchbaum E, Pilz S, Trummer C, Schwetz V, Pachernegg O, Heijboer AC, et al. Vitamin D and Testosterone in Healthy Men: A Randomized Controlled Trial. J Clin Endocrinol Metab. 2017 Nov 1;102(11):4292-302.

104. Perticone M, Maio R, Sciacqua A, Suraci E, Pinto A, Pujia R, et al. Ketogenic Diet-Induced Weight Loss is Associated with an Increase in Vitamin D Levels in Obese Adults. Mol Basel Switz. 2019 Jul 9;24(13):2499.

105. Barber TM, Hanson P, Kabisch S, Pfeiffer AFH, Weickert MO. The Low-Carbohydrate Diet: Short-Term Metabolic Efficacy Versus Longer-Term Limitations. Nutrients. 2021 Apr 3;13(4):1187.

106. Garofalo V, Barbagallo F, Cannarella R, Calogero AE, La Vignera S, Condorelli RA. Effects of the ketogenic diet on bone health: A systematic review. Front Endocrinol. 2023;14:1042744.

107. Tewani GR, Silwal K, Sharma G, Yadav D, Siddiqui A, Kriplani S, et al. Effect of Medically Supervised Prolonged Fasting Therapy on Vitamin D, B12, Body Weight, Body Mass Index, Vitality and Quality of Life: A Randomized Control Trial. Nutr Metab Insights. 2022;15:11786388221130560.

108. Żychowska M, Rola R, Borkowska A, Tomczyk M, Kortas J, Anczykowska K, et al. Fasting and Exercise Induce Changes in Serum Vitamin D Metabolites in Healthy Men. Nutrients. 2021 Jun 8;13(6):1963.

109. Nair PM, Silwal K, Kodali P, Tewani GR. Therapeutic Fasting and Vitamin D Levels: A New Dimension in Type 2 Diabetes Mellitus Prevention and Management-A Brief Report [Internet]. 2024. Available from: https://www.thieme-connect.de/products/ejournals/pdf/10.1055/s-0044-1778717.pdf

110. Giménez MC, Luxwolda M, Van Stipriaan EG, Bollen PP, Hoekman RL, Koopmans MA, et al. Effects of Near-Infrared Light on Well-Being and Health in Human Subjects with Mild Sleep-Related Complaints: A Double-Blind, Randomized, Placebo-Controlled Study. Biology. 2022 Dec 29;12(1):60.

111. Ioannou C. How to Increase Vitamin D Levels with Red Light Therapy [Internet]. Available from: https://www.exercisinghealth.net/blog/how-to-increase-vitamin-d-levels-with-red-light-therapy

112. De Marchi T, Ferlito JV, Ferlito MV, Salvador M, Leal-Junior ECP. Can Photobiomodulation Therapy (PBMT) Minimize Exercise-Induced Oxidative Stress? A Systematic Review and Meta-Analysis. Antioxid Basel Switz. 2022 Aug 27;11(9):1671.

113. Heiskanen V, Pfiffner M, Partonen T. Sunlight and health: shifting the focus from vitamin D3 to photobiomodulation by red and near-infrared light. Ageing Res Rev. 2020 Aug;61:101089.

114. Hamblin MR. Photobiomodulation for Skin Pigmentation Disorders: A Dual-Function Treatment. Photobiomodulation Photomed Laser Surg. 2023 May;41(5):199-200.

115. Zhu W, Zhang H, Wang S. Vitamin D3 Suppresses Human Cytomegalovirus-Induced Vascular Endothelial Apoptosis via Rectification of Paradoxical m6A Modification of Mitochondrial Calcium Uniporter mRNA, Which Is Regulated by METTL3 and YTHDF3. Front Microbiol. 2022;13:861734.

116. Stecher C, Maurer KP, Kastner MT, Steininger C. Human Cytomegalovirus Induces Vitamin-D Resistance In Vitro by Dysregulating the Transcriptional Repressor Snail. Viruses. 2022 Sep 10;14(9):2004.

117. Fernandez-Robredo P, González-Zamora J, Recalde S, Bilbao-Malavé V, Bezunartea J, Hernandez M, et al. Vitamin D Protects against Oxidative Stress and Inflammation in Human Retinal Cells. Antioxid Basel Switz. 2020 Sep 8;9(9):838.

118. Ha NNY, Huynh TKT, Phan NUP, Nguyen TH, Vong LB, Trinh NT. Synergistic effect of metformin and vitamin D3 on osteogenic differentiation of human adipose tissue-derived mesenchymal stem cells under high d-glucose conditions. Regen Ther. 2024 Mar;25:147-56.

119. Leão IS, Dantas JR, Araújo DB, Ramos MEN, Silva KR, Batista LS, et al. Evaluation of type 1 diabetes’ partial clinical remission after three years of heterologous adipose tissue derived stromal/stem cells transplantation associated with vitamin D supplementation. Diabetol Metab Syndr. 2024 May 24;16(1):114.

120. Araujo DB, Dantas JR, Silva KR, Souto DL, Pereira M de FC, Moreira JP, et al. Allogenic Adipose Tissue-Derived Stromal/Stem Cells and Vitamin D Supplementation in Patients With Recent-Onset Type 1 Diabetes Mellitus: A 3-Month Follow-Up Pilot Study. Front Immunol. 2020;11:993.

121. Stem Cells Portal. Boosting the effects of vitamin D to tackle diabetes [Internet]. 2018. Available from: https://stemcellsportal.com/news/boosting-effects-vitamin-d-tackle-diabetes

122. Wu Y ying, Yu T, Yang X yong, Li F, Ma L, Yang Y, et al. Vitamin D3 and insulin combined treatment promotes titanium implant osseointegration in diabetes mellitus rats. Bone. 2013 Jan;52(1):1-8.

123. Posa F, Di Benedetto A, Cavalcanti-Adam EA, Colaianni G, Porro C, Trotta T, et al. Vitamin D Promotes MSC Osteogenic Differentiation Stimulating Cell Adhesion and αVβ3 Expression. Stem Cells Int. 2018;2018:6958713.

124. Lee HJ, Song YM, Baek S, Park YH, Park JB. Vitamin D Enhanced the Osteogenic Differentiation of Cell Spheroids Composed of Bone Marrow Stem Cells. Med Kaunas Lith. 2021 Nov 19;57(11):1271.

125. Soto JR, Anthias C, Madrigal A, Snowden JA. Insights Into the Role of Vitamin D as a Biomarker in Stem Cell Transplantation. Front Immunol. 2020;11:966.

126. Cheng RZ. Integrative Orthomolecular Medicine Protocol for ASCVD [Internet]. Available from: https://www.drwlc.com/blog/2024/08/01/integrative-orthomolecular-medicine-protocol-for-ascvd/

 

Nutritional Medicine is Orthomolecular Medicine

Orthomolecular medicine uses safe, effective nutritional therapy to fight illness. For more information: http://www.orthomolecular.org

Banner Image : Vitamin D. Image Credit – Karyna Panchenko


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