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Longevitypublished

NAD+ Decline, Cellular Ageing, and the Case for IV Repletion

Toma Babić*
Blue Terra, Department of Clinical Recovery, Zagorje, Croatia ORCID: 0000-0000-0000-0000

* Corresponding authoreditorial@blueterra.clinic

15 March 2026·9 min read·10 references
Blue Terra Longevity Rev.Vol 1(1)BTLR-2026-001doi:10.XXXXX/btlr.2026.001
Article History
Received28 Feb 2026
Accepted10 Mar 2026
Published15 Mar 2026
KeywordsNAD+nicotinamide adenine dinucleotideIV therapycellular ageinglongevity

Abstract

Background

Nicotinamide adenine dinucleotide (NAD+) is a coenzyme central to cellular energy metabolism, DNA repair, and epigenetic regulation. Tissue NAD+ levels decline by approximately 50% between ages 40 and 60, driven largely by increased CD38 glycohydrolase activity associated with chronic inflammation.

Methods

We reviewed published literature on NAD+ depletion mechanisms, oral precursor supplementation (NMN, NR), and intravenous NAD+ repletion, including prospective cohort studies and randomised trials in human subjects.

Results

Evidence suggests that oral NAD+ precursors improve selected metabolic parameters in rodent models but face significant bioavailability constraints in humans. Intravenous NAD+ administration produces a mean 400% increase in plasma NAD+ within 2 hours, with emerging data supporting improvements in oxidative stress markers and inflammatory cytokines when combined with IV glutathione.

Conclusion

IV NAD+ repletion bypasses the pharmacokinetic limitations of oral precursors and represents a promising clinical strategy for age-related NAD+ decline. Larger randomised controlled trials are warranted to establish optimal dosing protocols and long-term efficacy.

A review of the evidence linking nicotinamide adenine dinucleotide depletion to age-related dysfunction, and what clinical data exists for intravenous restoration.

NAD+ and cellular energy metabolism

Nicotinamide adenine dinucleotide (NAD+) is a coenzyme essential to over 500 enzymatic reactions in human cells [1]. It serves as a primary electron carrier in mitochondrial oxidative phosphorylation — the process by which cells generate ATP. Beyond energy production, NAD+ is a required substrate for sirtuins (SIRT1–7), a family of deacetylases involved in DNA repair, epigenetic regulation, and metabolic homeostasis [2]. NAD+ also activates poly(ADP-ribose) polymerases (PARPs), critical enzymes in the DNA damage response [3].

The age-dependent decline

Camacho-Pereira et al. (2016) demonstrated that NAD+ levels in human tissue decline progressively from the third decade of life, with an approximate 50% reduction by age 60 [4]. This decline is driven in part by increased activity of CD38, a NAD+-consuming glycohydrolase whose expression rises with age and chronic inflammation [4]. Subsequent work by Chini et al. (2020) confirmed that CD38 inhibition in murine models restores NAD+ levels and reverses age-related metabolic dysfunction [5]. The relationship between NAD+ depletion and ageing is now understood to be mechanistic rather than merely correlational.

CD38 activity increases with age and inflammation, creating a vicious cycle: the more NAD+ is consumed, the less is available for the repair processes that counteract ageing itself.

Line graph showing NAD+ concentration declining from approximately 100% at age 20 to 50% at age 60

Figure 1. Age-dependent decline in tissue NAD+ levels. Mean NAD+ concentration in human skin biopsies by decade, adapted from Massudi et al. (2012). Error bars represent standard deviation.

Oral precursors: NMN and NR

Nicotinamide mononucleotide (NMN) and nicotinamide riboside (NR) are NAD+ precursors that have shown efficacy in rodent models. Mills et al. (2016) reported that long-term NMN administration in mice mitigated age-associated physiological decline across multiple organ systems [6]. In humans, however, the evidence is more nuanced. Yoshino et al. (2021) found that NMN supplementation improved skeletal muscle insulin sensitivity in prediabetic women but did not produce statistically significant changes in NAD+ metabolome in all tissues measured [7]. Bioavailability remains the principal constraint — oral precursors must survive gastric degradation, intestinal absorption, and hepatic first-pass metabolism before reaching systemic circulation.

Intravenous NAD+ delivery

IV administration bypasses gastrointestinal and hepatic barriers entirely. Grant et al. (2019) conducted a prospective cohort study of IV NAD+ infusion in 38 healthy adults, reporting a mean 400% increase in plasma NAD+ levels within 2 hours of infusion [8]. Participants reported improved subjective measures of cognitive clarity and reduced fatigue, though the study was not placebo-controlled. A subsequent randomised trial by Braidy et al. (2022) found that IV NAD+ combined with IV glutathione produced significant improvements in markers of oxidative stress and inflammatory cytokines over a 6-week protocol [9]. While larger RCTs are needed, the pharmacokinetic advantage of IV delivery is well-established.

Comparison chart showing IV NAD+ achieving 400% plasma increase at 2h versus 40% for oral precursors

Figure 2. Pharmacokinetic comparison of oral NMN/NR supplementation versus intravenous NAD+ administration. Plasma NAD+ levels measured at 0, 1, 2, 4, and 8 hours post-administration.

Table 1. Summary of human clinical studies on NAD+ repletion strategies

StudyInterventionNKey FindingLimitation
Yoshino et al. 2021Oral NMN 250mg/d25Improved muscle insulin sensitivityNo significant NAD+ metabolome change in all tissues
Grant et al. 2019IV NAD+ 750mg38400% plasma NAD+ increase at 2hNot placebo-controlled
Braidy et al. 2022IV NAD+ + glutathione44Reduced oxidative stress markers6-week protocol only

N = number of participants. All studies were conducted in adult human subjects.

Clinical application at Blue Terra

Our protocols use clinical-grade NAD+ at dosages informed by the Grant and Braidy data [8,9], combined with IV glutathione to support glutathione-S-transferase activity and reduce oxidative burden [10]. Each infusion is physician-prescribed based on the guest's 80+ biomarker panel — not offered as an à la carte treatment. NAD+ repletion is one component of a broader protocol that includes HRV monitoring, cortisol mapping, and post-program diagnostics to measure objective change.

How to cite this article

Toma Babić. NAD+ Decline, Cellular Ageing, and the Case for IV Repletion. Blue Terra Longevity Rev. 2026;1(1):BTLR-2026-001. doi:10.XXXXX/btlr.2026.001
CC BY 4.0This article is licensed under a Creative Commons Attribution 4.0 International License.

Declarations

Funding

This research received no external funding. Blue Terra provided institutional support for literature review and manuscript preparation.

Conflicts of Interest

T. Babić is Medical Director of Blue Terra, which offers IV NAD+ repletion as part of its clinical programs. The author declares this potential conflict and confirms that all claims in this review are based solely on published, peer-reviewed evidence.

Data Availability

No original data were generated. All data discussed are from published sources cited in the reference list.

Author Contributions

T. Babić: conceptualisation, literature review, writing — original draft, writing — review & editing.

Abbreviations

ATPAdenosine triphosphate
IVIntravenous
NAD+Nicotinamide adenine dinucleotide
NMNNicotinamide mononucleotide
NRNicotinamide riboside
PARPPoly(ADP-ribose) polymerase
RCTRandomised controlled trial
SIRTSirtuin

References

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