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Nadplus introduction

Chapter 1: Introduction and Overview

1.1 Document Purpose

This technical manual provides comprehensive documentation for NAD+ (Nicotinamide Adenine Dinucleotide, Oxidized Form), a fundamental pyridine nucleotide coenzyme. It is intended for research laboratories, procurement professionals, quality assurance teams, biotechnology organizations, and scientific researchers requiring detailed technical information for laboratory research use.

1.2 Product Identity

Field Value
Product Name NAD+ (Nicotinamide Adenine Dinucleotide, Oxidized Form)
Type Biochemical Coenzyme / Pyridine Nucleotide
CAS Number 53-84-9
Molecular Formula C₂₁H₂₇N₇O₁₄P₂
Molecular Weight 663.43 Da
Purity ≥98% (HPLC)
Appearance White to off-white lyophilized powder
Packaging 500 mg, 1000 mg per vial

1.3 Classification

NAD+ is classified as a Biochemical Coenzyme, specifically a Pyridine Nucleotide. It is not a peptide, protein, or any amino acid polymer. As a small-molecule coenzyme, it functions as a critical electron carrier in redox metabolism and serves as a substrate for multiple enzyme families including sirtuins, PARPs (poly-ADP-ribose polymerases), and CD38.

1.4 Biological Significance

NAD+ is one of the most abundant and versatile coenzymes in living systems. It participates in over 500 enzymatic reactions and serves two primary functional categories:

  1. Redox Metabolism: NAD+ shuttles electrons in catabolic and anabolic reactions, cycling between its oxidized (NAD+) and reduced (NADH) forms.
  2. Signaling Substrate: NAD+ is consumed as a substrate by sirtuins (class III histone deacetylases), PARPs, CD38, and other NAD+-consuming enzymes, producing second messengers such as nicotinamide and ADP-ribose.

1.5 Historical Context

Year Milestone
1904 Arthur Harden and William John Young discover a heat-stable factor ("coferment") essential for yeast fermentation
1906 Harden and Young identify the factor as a nucleotide-containing coenzyme
1936 Otto Warburg identifies the coenzyme's role in hydrogen transfer, publishing its structure
1937 Hans von Euler-Chelpin wins the Nobel Prize in Chemistry for work on NAD+ structure and function
1963 Full chemical synthesis of NAD+ is achieved
2000s NAD+ emerges as a key signaling molecule; sirtuin and PARP pathways elucidated
2010s–present NAD+ metabolism becomes a major focus in aging research, neurodegeneration, and metabolic disease

1.6 Manufacturer Information

Field Value
Manufacturer Qingdao RPL Biotechnology Co., Ltd.
Brand RPL Peptide
Intended Use Laboratory research use only
Certifications COA, HPLC, LC-MS

1.7 Document Structure

This technical manual is organized into 18 chapters covering all aspects of NAD+: chemical and physical properties, biochemical classification, synthesis methods, quality control, analytical methods (HPLC, LC-MS, and others), stability studies, solubility and reconstitution, handling and storage protocols, safety information, regulatory compliance, research applications, mechanism of action, references, glossary, and appendices.

Proper documentation and adherence to the protocols described herein are essential for reproducible and reliable laboratory research outcomes.


End of Chapter 1