Discover Our Complete Catalog
Browse our full peptide catalog and explore additional compounds. Click any product to view its details and discover more research solutions.

1. 5-Amino-1MQ 10mg
2. 5-Amino-1MQ 50mg
3. ACE-031 1mg
4. ACTH 1-39 5mg
5. Adamax 5mg
6. AHK-Cu 50mg
7. AICAR 50mg
8. AICAR 100mg
9. AOD-9604 5mg
10. AOD-9604 10mg
11. Alprostadil 20mcg
12. Amylin 5mg
13. Angiotensin (1–7) 5mg
14. ARA-290 10mg
15. Bimagrumab 5mg
16. Botulinum Toxin 100IU
17. BPC-157 10mg
18. BPC-157 20mg
19. BPC-157 5mg + TB-500 5mg
20. BPC-157 10mg + TB-500 10mg
21. Bronchogen 20mg
22. Cagrilintide 10mg
23. Cagrilintide 20mg
24. Cardiogen 20mg
25. Cartalax 20mg
26. CBL-514 10mg
27. CBL-514 20mg
28. CBL-514 30mg
29. Cerebrolysin 60mg
30. Cerlankin 2mg
31. CGRP (Calcitonin Gene-Related Peptide) 1mg
32. CJC-1295 with DAC 5mg
33. CJC-1295 with DAC 10mg
34. CJC-1295 with DAC 5mg + Ipamorelin 5mg
35. CJC-1295 without DAC 5mg
36. CJC-1295 without DAC 10mg
37. CJC-1295 without DAC 5mg + Ipamorelin 5mg
38. Chonluten 20mg
39. Cortagen 20mg
40. Crystagen 20mg
41. CT-1 Cardiotrophin-1 5mg
42. Dermorphin 5mg
43. Dihexa 5mg
44. DSIP 5mg
45. Dulaglutide 5mg
46. Elabela Apelin 5mg
47. Enfuvirtide 90mg
48. Epithalon 5mg
49. Epithalon 40mg
50. Epithalon 50mg
51. EPO 3000IU
52. FGF21 10mg
53. Follistatin-344 1mg
54. FOXO4 10mg
55. GHK-Cu 50mg
56. GHK-Cu 100mg
57. Ghrelin 10mg
58. GHRP-2 5mg
59. GHRP-6 5mg
60. Glucagon 1mg
61. Glutathione 1500mg
62. Gonadorelin Acetate 2mg
63. Goserelin 10mg
64. GLOW BPC-157 10mg + GHK-Cu 50mg + TB-500 10mg
65. HGH 191AA 15IU
66. HGH 191AA 36IU
67. HGH Fragment 176-191 10mg
68. HGH Fragment 176-191 15mg
69. HMG (Human Menopausal Gonadotropin) 75IU
70. Humanin 10mg
71. Hyaluronic Acid 5mg
72. Hexarelin Acetate 2mg
73. Hexarelin Acetate 5mg
74. IGF-1 LR3 1mg
75. Ipamorelin 5mg
76. Ipamorelin 10mg
77. Kisspeptin-10 5mg
78. Kisspeptin-10 10mg
79. KLOW BPC-157 10mg + GHK-Cu 50mg + TB-500 10mg + KPV 10mg
80. KPV 10mg
81. Leuprolide Acetate 10mg
82. Liraglutide 5mg
83. Livagen 20mg
84. LL-37 5mg
85. Lysyl Oxidase 30mg
86. Matrixyl 10mg
87. Mazdutide 10mg
88. Melanotan I 10mg
89. Melanotan II 10mg
90. Melatonin 10mg
91. MGF 2mg
92. MOTS-c 10mg
93. MOTS-c 40mg
94. NAD+ 100mg
95. NAD+ 500mg
96. NAD+ 1000mg
97. Nesiritide 5mg
98. Neuropeptide Y (NPY) 10mg
99. Ovagen 20mg
100. Oxytocin Acetate 5mg
101. Oxytocin Acetate 10mg
102. P21 5mg
103. P21 10mg
104. PACAP 5mg
105. Pancragen 20mg
106. PE 22-28 10mg
107. PEG-MGF 2mg
108. Pinealon 5mg
109. Pinealon 10mg
110. Pinealon 20mg
111. PNC-27 5mg
112. PNC-27 10mg
113. Prostamax 20mg
114. PT-141 10mg
115. PTH Fragments 10mg
116. Relamorelin 5mg
117. Retatrutide 10mg
118. Retatrutide 20mg
119. Retatrutide 30mg
120. Retatrutide 40mg
121. Retatrutide 60mg
122. Retatrutide 5mg + Cagrilintide 5mg
123. Selank 5mg
124. Selank 10mg
125. Semaglutide 5mg + Cagrilintide 5mg
126. Semax 5mg
127. Sermorelin 5mg
128. SLU-PP-332 10mg
129. SNAP-8 10mg
130. SS-31 10mg
131. SS-31 50mg
132. Survodutide 10mg
133. TB-500 10mg
134. TB-500 (FRAG) 10mg
135. Teduglutide 5mg
136. Teriparatide 10mg
137. Tesamorelin 5mg
138. Tesamorelin 10mg
139. Tesamorelin 20mg
140. Tesamorelin 5mg + Ipamorelin 5mg
141. Tesofensine 1mg
142. Testagen 20mg
143. Thymalin 10mg
144. Thymosin Alpha-1 5mg
145. Thymosin Alpha-1 10mg
146. Treprostinil 5mg
147. Vesugen 20mg
148. VIP 5mg
149. VIP 10mg
150. Vilon 20mg

NAD+ 1.000mg

Supports cellular energy / precursor supporting energy pathways

Nicotinamide adenine dinucleotide (NAD+) is a crucial coenzyme involved in various metabolic processes, including glycolysis, β-oxidation, and oxidative phosphorylation. It also plays a significant role in post-translational modifications such as ADP-ribosylation and deacetylation, which are essential for energy metabolism, DNA repair, gene expression, and stress response

R$980,00

Out of stock

Warning — For Research Use Only

Scientific content intended for research laboratories only. It is not a clinical, therapeutic, or diagnostic recommendation. Use is restricted to qualified professionals. Consult specialists before purchasing or using. Biopelabs reinforces its commitment to ethical and responsible use.

Description

NAD+ is a coenzyme involved in redox reactions and cellular metabolism. It has gained attention for its role as a signaling molecule, influencing processes such as energy metabolism, cellular survival, and aging.

NAD+ levels decline with age, leading to metabolic alterations and increased susceptibility to disease, which has driven interest in molecules that boost NAD+ levels to improve health and longevity.

 

Important Information

Properties Value
Molecular Formula C21H27N7O14P2
Molecular Weight 663.43 g/mol
Synonyms: 53-84-9, beta-nicotinamide adenine dinucleotide, Endopride, alpha-diphosphopyridine nucleotide, 7298-93-3

 

Main Structure of the NAD+ Molecule

Source: PubChem

 

Lyophilized Peptides

The peptides undergo a lyophilization process, a technique that contributes to greater stability and durability while preserving purity and molecular structure during storage. It is important to note that no fillers are used during this process.

 

Intended Use

Biopelabs advises: this material is provided exclusively as a chemical input for research purposes. Its use is restricted to in vitro assays and experimental activities in laboratory settings. The information presented is strictly for informational and educational purposes. Handling must be carried out only by properly qualified professionals. The product is not classified as a medication, food, or cosmetic, and must not be used, marketed, or described as such.

 

Research

NAD+

Investigation of NAD+

NAD+ plays a crucial role in redox reactions and serves as a cofactor for numerous enzymes, including sirtuins and poly(ADP‑ribose) polymerases (PARPs). This coenzyme is essential for cellular processes involving metabolism, DNA repair, and chromatin remodeling, all of which are critical for maintaining tissue homeostasis and overall metabolic balance. With advancing age, a decline in NAD+ levels is observed, which may contribute to age‑related diseases such as cognitive impairment, cancer, and metabolic disorders.

 

Aging and Longevity

NAD+ plays an important role in aging and longevity. Studies suggest that restoring NAD+ levels in older or diseased organisms can improve health and extend lifespan. This has led to growing interest in NAD+ precursors such as nicotinamide riboside (NR) and nicotinamide mononucleotide (NMN), which have shown beneficial potential in age‑related pathologies.

The enzyme CD38, an NADase, is key to understanding age‑related NAD+ decline. Inhibition of CD38 by specific compounds such as 78c has yielded promising results in reversing the NAD+ decline and improving metabolic and physiological parameters in aging models. These effects include enhanced glucose tolerance as well as improved muscle function and cardiovascular performance. By elevating NAD+ levels, longevity‑promoting factors such as sirtuins and AMPK are activated, whereas pathways that negatively impact lifespan, such as mTOR‑S6K, are inhibited. This pharmacological approach highlights the possibility of modulating NAD+ metabolism to prevent or reverse aging‑associated dysfunctions.

 

Metabolic Disorders

Alterations in NAD+ metabolism are closely associated with the onset of metabolic disorders, including diabetes, obesity, and non‑alcoholic fatty liver disease. NAD+ levels tend to decrease with aging and in conditions of nutritional imbalance, thereby exacerbating these problems. An imbalance in the NAD+/NADH ratio can lead to inadequate cellular responses to stress and multiple metabolic dysfunctions characteristic of metabolic diseases.

 

Cardiovascular Diseases

Aging and metabolic stress are linked to a reduction in NAD+ levels, which can result in mitochondrial dysfunction and increased susceptibility to cardiovascular diseases. This decline is associated with major risk factors such as obesity and hypertension, which intensify the development of conditions like atherosclerosis and cardiomyopathies. The progressive loss of NAD+ over time or under stress conditions underscores the need to maintain adequate NAD+ levels to prevent cardiovascular dysfunction.

 

Neurodegenerative Disorders

NAD+ participates in redox reactions and signaling‑dependent processes that are fundamental for mitochondrial function and for reducing oxidative stress, a common feature in neurodegenerative diseases. Activation of NAD+‑dependent pathways can enhance cellular resilience against oxidative damage, which is crucial for neuronal health. Furthermore, NAD+ plays a role in maintaining axonal integrity and viability, making its metabolism an attractive target for therapeutic strategies in neurological conditions.

Studies show that increasing NAD+ availability can improve mitochondrial function and reduce neuroinflammation, as demonstrated in models of diseases such as Parkinson’s, Alzheimer’s, and amyotrophic lateral sclerosis (ALS). In these models, improved NAD+ levels have contributed to better mitochondrial function and enhanced cognitive and synaptic performance. The Sirt1/PGC‑1α pathway is one of the mechanisms through which NAD+ exerts its protective effects, highlighting its potential as a therapeutic target.

 

Mitochondrial Function

NAD+ metabolism is closely tied to mitochondrial function. NAD+ serves as a substrate for sirtuins, which are enzymes that regulate mitochondrial homeostasis. Elevated NAD+ levels and sirtuin activation have been associated with improved mitochondrial function and overall metabolism, as well as beneficial effects on longevity across multiple species.

The origin and intramitochondrial transport of NAD+ have been the subject of considerable debate. Recent research has identified SLC25A51 as an essential NAD+ transporter in mammalian mitochondria, playing a key role in maintaining mitochondrial NAD+ levels and respiratory function. De novo NAD+ synthesis has also been shown to benefit mitochondrial function, with enzymes such as ACMSD critically regulating NAD+ levels and sirtuin activity.

 

Cancer Research

Cancer cells display a peculiar metabolic pattern known as the Warburg effect, characterized by increased glycolysis even in the presence of oxygen, a process sustained by elevated NAD+ levels. The NAD+ regeneration pathway is especially important in cancer cells, as it becomes their primary route for NAD+ synthesis, and its inhibition can trigger cell death in tumor cells.

NAD+ metabolism is not only relevant in cancer cells but also influences the tumor microenvironment. NAD+ and its metabolites can affect immune responses, contributing to an immunosuppressive microenvironment. Enzymes such as CD38, which consume NAD+, are involved in producing metabolites that suppress immunity, thereby further impacting cancer progression and immune evasion.

Targeting NAD+ metabolism represents a promising strategy for cancer treatment. Inhibitors of NAD+ biosynthesis, particularly those targeting nicotinamide phosphoribosyltransferase (NAMPT), have shown promise in preclinical models, although resistance due to alternative NAD+ biosynthetic pathways may limit their efficacy.

 

References

Rajman, L., Chwalek, K., & Sinclair, D. (2018). Therapeutic potential of NAD‑boosting molecules: The in vivo evidence… Cell Metabolism, 27(3), 529–547. https://doi.org/10.1016/j.cmet.2018.02.011

Tarragó, M., Chini, C., Kanamori, K., Warner, G., Caride, A., De Oliveira, G., Rud, M., Samani, A., Hein, K., Huang, R., Jurk, D., Cho, D., Boslett, J., Miller, J., Zweier, J., Passos, J., Doles, J., Becherer, D., & Chini, E. (2018). A potent and specific CD38 inhibitor ameliorates age‑related metabolic dysfunction by reversing the decline in tissue NAD+. Cell Metabolism, 27(5), 1081–1095.e10. https://doi.org/10.1016/j.cmet.2018.03.016

Okabe, K., Yaku, K., Tobe, K., & Nakagawa, T. (2019). Implications of altered NAD metabolism in metabolic disorders. Journal of Biomedical Science, 26. https://doi.org/10.1186/s12929‑019‑0527‑8

Amjad, S., Nisar, S., Bhat, A., Shah, A., Frenneaux, M., Fakhro, K., Haris, M., Reddy, R., Patay, Z., Baur, J., & Bagga, P. (2021). Role of NAD+ in the regulation of cellular and metabolic signaling pathways. Molecular Metabolism, 49. https://doi.org/10.1016/j.molmet.2021.101195

Rotllan, N., Camacho, M., Tondo, M., Diarte‑Añazco, E., Canyelles, M., Méndez‑Lara, K., Benítez, S., Alonso, N., Mauricio, D., Escolà‑Gil, J., Blanco‑Vaca, F., & Julve, J. (2021). Therapeutic potential of emerging NAD+‑boosting strategies for cardiovascular diseases. Antioxidants, 10. https://doi.org/10.3390/antiox10121939

Abdellatif, M., Sedej, S., & Kroemer, G. (2021). NAD+ metabolism in cardiac health, aging, and disease… Circulation, 144(22), 1795–1817. https://doi.org/10.1161/CIRCULATIONAHA.121.056589

Lin, Q., Zuo, W., Liu, Y., Wu, K., & Liu, Q. (2021). NAD+ and cardiovascular diseases. Clinica Chimica Acta; International Journal of Clinical Chemistry. https://doi.org/10.1016/j.cca.2021.01.012

Pehar, M., Harlan, B., Killoy, K., & Vargas, M. (2017). Nicotinamide adenine dinucleotide metabolism and neurodegeneration… Antioxidants & Redox Signaling, 28(18), 1652–1668. https://doi.org/10.1089/ars.2017.7145

Alexandris, A., & Koliatsos, V. (2023). NAD+, axonal maintenance, and neurological diseases. Antioxidants & Redox Signaling, 39, 1167–1184. https://doi.org/10.1089/ars.2023.0350

Zhao, Y., Zhang, J., Zheng, Y., Zhang, Y., Zhang, X., Wang, H., Du, Y., Guan, J., Wang, X., & Fu, J. (2021). NAD+ improves cognitive function and reduces neuroinflammation by attenuating mitochondrial damage and decreasing ROS production in chronic cerebral hypoperfusion models via the Sirt1/PGC‑1α pathway. Journal of Neuroinflammation, 18. https://doi.org/10.1186/s12974‑021‑02250‑8

Katsyuba, E., Mottis, A., Ziętak, M., De Franco, F., Van der Velpen, V., Gariani, K., Ryu, D., Cialabrini, L., Matilainen, O., Liscio, P., Giacchè, N., Stokar‑Regenscheit, N., Legouis, D., De Seigneux, S., Ivanisevic, J., Raffaelli, N., Schoonjans, K., Pellicciari, R., & Auwerx, J. (2018). De novo NAD+ synthesis improves mitochondrial function and enhances health. Nature, 563, 354–359. https://doi.org/10.1038/s41586‑018‑0645‑6

Luongo, T., Eller, J., Lu, M., Niere, M., Raith, F., Perry, C., Bornstein, M., Oliphint, P., Wang, L., McReynolds, M., Migaud, M., Rabinowitz, J., Johnson, F., Johnsson, K., Ziegler, M., Cambronne, X., & Baur, J. (2020). SLC25A51 is a mammalian mitochondrial NAD+ transporter. Nature, 588, 174–179. https://doi.org/10.1038/s41586‑020‑2741‑7

Yaku, K., Okabe, K., Hikosaka, K., & Nakagawa, T. (2018). NAD metabolism in cancer therapy. Frontiers in Oncology, 8. https://doi.org/10.3389/fonc.2018.00622

Kennedy, B., Sharif, T., Martell, E., Dai, C., Kim, Y., Lee, P., & Gujar, S. (2016). NAD+ salvage pathway in cancer metabolism and therapy… Pharmacological Research, 114, 274–283. https://doi.org/10.1016/j.phrs.2016.10.027

Audrito, V., Managò, A., Gaudino, F., Sorci, L., Messana, V., Raffaelli, N., & Deaglio, S. (2019). NAD biosynthetic and NAD‑consuming enzymes as central players in metabolic regulation of innate and adaptive immune responses in cancer. Frontiers in Immunology, 10. https://doi.org/10.3389/fimmu.2019.01720

Myong, S., Nguyen, A., & Challa, S. (2024). Biological functions and therapeutic potential of NAD+ metabolism in gynecological cancers. Cancers, 16. https://doi.org/10.3390/cancers16173085

Ghanem, M., Caffa, I., Monacelli, F., & Nencioni, A. (2024). Inhibitors of NAD+ production in cancer treatment: State of the art and perspectives. International Journal of Molecular Sciences, 25. https://doi.org/10.3390/ijms25042092

 

Scientific Reviewer

The content was reviewed by Dr. Ky H. Le, MD. Dr. Ky H. Le is a family physician in Aiea, Hawaii. He received his medical degree from St. George’s University School of Medicine and has been practicing for over 20 years. He has expertise in the treatment of obesity, diabetes, hypertension, and high blood pressure, among other conditions—see all areas of specialization at https://health.usnews.com/doctors/ky‑le‑371599#expertise. Dr. Ky H. Le accepts Medicare, Aetna, Humana, Blue Cross, and United Healthcare.
Reference: https://health.usnews.com/doctors/ky‑le‑371599#expertise

Reviews

There are no reviews yet.

Only logged in customers who have purchased this product may leave a review.

Additional information

Weight 40 g
Dimensions 7 × 3,6 × 8 cm

Fill out the form