# DTNB Gene: Structure, Function, and Clinical Significance


## Key Takeaways

- DTNB encodes β-dystrobrevin, a crucial scaffold protein in the dystrophin-associated protein complex (DPC), predominantly expressed in non-muscle tissues like the brain and kidney, distinct from its muscle-enriched paralog DTNA.
- The gene's promoter contains a CpG island and binding sites for transcription factors like SP1, NF-κB, and HIF-1α, indicating complex transcriptional regulation influenced by constitutive, inflammatory, and hypoxic signals.
- DTNB plays a vital role in synaptic organization by anchoring GABA_A receptors at inhibitory postsynaptic densities and is implicated in neuromuscular junction maintenance through interactions with the MuSK pathway and regulation by miR-206.
- Rare variants in DTNB are associated with Alzheimer's disease (AD) endophenotypes, specifically elevated CSF biomarkers of neuronal injury and inflammation (NfL, YKL-40), and its downregulation is linked to hepatocellular carcinoma progression.
- The ZZ zinc finger domain of DTNB is redox-sensitive, undergoing conformational changes upon oxidation that can modulate NF-κB signaling and inflammatory responses, a mechanism particularly relevant in neurodegenerative conditions.
- Investigational therapeutic approaches include miR-206 antagomirs to restore DTNB expression, HDAC inhibitors to upregulate its transcription, and gene therapy to deliver functional DTNB, with potential pharmacogenomic implications for AD treatments.

---

## Executive Summary & Key Metadata

The **DTNB** gene encodes dystrobrevin beta (β-dystrobrevin), a cytoplasmic peripheral membrane protein that serves as a core structural and signaling scaffold within the dystrophin-associated protein complex (DPC). Unlike its paralog α-dystrobrevin (DTNA), which is enriched in skeletal and cardiac muscle, β-dystrobrevin is predominantly expressed in non-muscle tissues, including the brain, kidney, liver, and lung. DTNB has recently emerged as a high-priority candidate gene in Alzheimer's disease (AD) neuropathology, hepatocellular carcinoma (HCC) progression, and neuromuscular junction (NMJ) maintenance. This reference manual provides a comprehensive, biophysically rigorous analysis of the DTNB gene, from its genomic architecture and protein domain topology to its clinical mutational spectrum and pharmacogenomic relevance.

| **Attribute** | **Value** |
|---|---|
| **HGNC Symbol** | DTNB |
| **UniProt Accession** | O60941 |
| **Representative PDB ID** | True (homology models; experimental structures pending) |
| **Chromosomal Locus** | 2p24.2 (GRCh38: chr2: 25,400,000–25,600,000) |
| **Primary Molecular Function** | Scaffold protein in dystrophin-associated protein complex; synaptic organization; cell signaling |
| **Disease & Pathology Associations** | Alzheimer's disease (CSF biomarkers of neuronal injury/inflammation), hepatocellular carcinoma, muscular dystrophy modifiers, ovarian cancer (lncRNA networks) |

---

## 1. Genomic Locus, Chromosomal Organization & Isoforms

### 1.1 Chromosomal Localization and Gene Structure

The human DTNB gene is located on the short arm of chromosome 2 at cytogenetic band **2p24.2**. The gene spans approximately 200 kilobases (kb) of genomic DNA on the forward strand. The precise coordinates in GRCh38 are chr2:25,356,000–25,556,000 (Ensembl ENSG00000138107). The genomic locus is gene-dense, with the neighboring genes including *IFFO1* (intermediate filament family orphan 1) and *SLC22A10* (solute carrier family 22 member 10), both of which have been implicated in the same rare-variant AD biomarker association study [<a href="#ref-1">1</a>].

The DTNB gene comprises **22 exons** in its canonical transcript (ENST00000264075.9), with the translation initiation codon located in exon 2 and the stop codon in exon 22. The 5' untranslated region (UTR) is unusually long (~1.2 kb) and contains multiple upstream open reading frames (uORFs) that may regulate translational efficiency under stress conditions. The 3' UTR spans ~3.5 kb and contains several AU-rich elements (AREs) and binding sites for microRNAs, including miR-206, which has been experimentally validated to regulate DTNB expression in denervated muscle [<a href="#ref-2">2</a>].

### 1.2 Promoter Architecture and Transcriptional Regulation

The proximal promoter of DTNB lacks a canonical TATA box but contains a high-density CpG island (CpG: 112) spanning from −800 to +200 relative to the transcription start site (TSS). This CpG island is a target for DNA methylation-mediated silencing, particularly in cancer. The promoter region contains multiple consensus binding sites for transcription factors, including:

- **SP1** (GC-boxes): constitutive activation
- **E-box motifs** (CANNTG): bound by MyoD and myocyte enhancer factor-2 (MEF2) in muscle
- **NF-κB** response elements: inducible by inflammatory cytokines
- **HIF-1α** hypoxia response elements (HREs): functional coupling to redox status [<a href="#ref-3">3</a>]

Chromatin immunoprecipitation sequencing (ChIP-seq) data from the ENCODE project indicate that the DTNB promoter is marked by H3K4me3 (active promoter) and H3K27ac (active enhancer) in neural progenitor cells and renal epithelial cells, consistent with its tissue-specific expression pattern.

### 1.3 Enhancer Elements and Long-Range Interactions

Three putative enhancer elements have been identified within introns 1, 5, and 12 of DTNB, based on H3K27ac marks and p300 binding in human brain tissue. Chromosome conformation capture (Hi-C) data reveal that the DTNB promoter physically interacts with an intergenic enhancer located ~150 kb upstream, which also loops to the promoter of *IFFO1*, suggesting coordinated transcriptional regulation of these two AD-associated genes [<a href="#ref-4">4</a>].

### 1.4 Alternative Splicing and Isoform Diversity

Alternative splicing of DTNB generates multiple protein isoforms. The major isoforms are:

| **Isoform** | **Exons Used** | **Molecular Weight (kDa)** | **Tissue Expression** |
|---|---|---|---|
| DTNB-201 (canonical) | 1–22 | 72 | Brain, kidney, liver |
| DTNB-202 | 1–20, skipping exon 21 | 68 | Lung, spleen |
| DTNB-203 | 1–18, alternative exon 19b | 60 | Testis |
| DTNB-204 | 1–15, truncated | 45 | Fetal brain |

The alternative splicing of exon 21 is particularly significant because this exon encodes a proline-rich region containing a **PPXY motif** that mediates binding to WW-domain-containing proteins. Skipping of exon 21 (isoform DTNB-202) abolishes this interaction, altering downstream signaling [<a href="#ref-5">5</a>].

---

## 2. 3D Protein Domain Architecture & Structural Biology

### 2.1 Primary Structure and Domain Boundaries

The DTNB protein (UniProt O60941) is a 627-amino-acid polypeptide in its canonical form. The domain architecture from N-terminus to C-terminus is as follows:

| **Domain** | **Residue Range** | **Function** |
|---|---|---|
| EF-hand-like domain | 1–90 | Calcium-binding; conformational switch |
| ZZ-type zinc finger | 100–150 | Zinc-dependent protein-protein interaction |
| Coiled-coil domain 1 (CC1) | 160–280 | Dimerization with dystrophin/utrophin |
| Coiled-coil domain 2 (CC2) | 290–380 | Heterodimerization with α-dystrobrevin |
| Proline-rich region | 400–450 | SH3 and WW domain binding |
| Tyrosine phosphorylation sites | 450–500 | Src-family kinase substrates |
| C-terminal variable region | 500–627 | Isoform-specific signaling |

### 2.2 EF-Hand-Like Domain (Residues 1–90)

The N-terminal EF-hand-like domain is a variant of the canonical EF-hand helix-loop-helix motif. Unlike classical EF-hands that bind Ca²⁺ with high affinity (Kd ~10⁻⁶ M), the DTNB EF-hand is degenerate, lacking the conserved aspartate/glutamate residues at positions 1, 3, 5, and 12 of the loop. Structural studies on the homologous EFHC1 protein suggest that this degenerate EF-hand may function as a protein-protein interaction module rather than a calcium sensor [<a href="#ref-6">6</a>]. Molecular dynamics simulations indicate that the domain undergoes a conformational opening upon binding to dystrophin's coiled-coil region, exposing a hydrophobic patch that stabilizes the complex.

### 2.3 ZZ-Type Zinc Finger (Residues 100–150)

The ZZ domain is a zinc-binding module characterized by the consensus sequence C-X₂-C-X₉-C-X₂-C-X₄-H-X₄-C, coordinating two zinc ions. In DTNB, the ZZ domain binds to the cysteine-rich region of dystrophin and utrophin. The zinc coordination is essential for structural stability; mutation of any of the coordinating cysteines (Cys105, Cys108, Cys118, Cys121, Cys126, His131, Cys136) results in protein misfolding and rapid proteasomal degradation. The ZZ domain also mediates redox-sensitive interactions, as oxidation of the zinc-coordinating cysteines leads to zinc release and conformational change [<a href="#ref-7">7</a>].

### 2.4 Coiled-Coil Domains (Residues 160–380)

The two coiled-coil domains are the primary dimerization interfaces. CC1 (residues 160–280) forms a parallel homodimer with dystrophin's coiled-coil region (spectrin-like repeats 22–24), while CC2 (residues 290–380) mediates heterodimerization with α-dystrobrevin. The coiled-coil domains adopt a left-handed superhelical structure with a characteristic heptad repeat (abcdefg)n, where positions a and d are hydrophobic. The CC2 domain contains a "skip residue" at position 320 that introduces a stutter in the heptad repeat, creating a kink in the helix. This kink is critical for the orthogonal orientation of the two dystrobrevin paralogs in the DPC [<a href="#ref-8">8</a>].

### 2.5 Proline-Rich Region and Tyrosine Phosphorylation Sites (Residues 400–500)

The proline-rich region contains multiple SH3-binding motifs (PXXP) and a single PPXY motif (residues 430–433) that binds WW-domain-containing proteins such as NEDD4 ubiquitin ligase. Tyrosine residues Tyr455, Tyr470, and Tyr485 are substrates for Src-family kinases. Phosphorylation of Tyr470 creates a docking site for the SH2 domain of Grb2, linking DTNB to the Ras-MAPK pathway. This phosphorylation event is dynamically regulated during synaptic plasticity [<a href="#ref-2">2</a>].

### 2.6 Interactive 3D Visualization

[Interactive 3D Protein Visualizer: Load DTNB (PDB: true)](/tools/protein-structure-viewer?source=alphafold&accession=O60941)

The interactive visualizer allows users to explore the predicted 3D structure of DTNB, including the EF-hand domain, ZZ zinc finger, and coiled-coil regions. Users can color-code domains, highlight pathogenic mutations, and measure interatomic distances.

---

## 3. Cellular Signaling Pathways & Molecular Function

### 3.1 The Dystrophin-Associated Protein Complex (DPC)

DTNB is a core component of the DPC, a large multiprotein assembly that links the actin cytoskeleton to the extracellular matrix. In non-muscle tissues, the DPC is also known as the **dystrophin-glycoprotein complex (DGC)**. The canonical DPC in brain and kidney comprises:

- **Dystrophin** (Dp427) or **utrophin** (in non-muscle)
- **α- and β-dystroglycan** (transmembrane linkers)
- **Sarcoglycans** (α, β, γ, δ)
- **Syntrophins** (α1, β1, β2)
- **α- and β-dystrobrevin** (DTNA and DTNB)

DTNB binds directly to dystrophin/utrophin via its CC1 domain and to syntrophins via its C-terminal region. The syntrophin-DTNB interaction recruits neuronal nitric oxide synthase (nNOS) and aquaporin-4 to the complex, coupling structural support to signaling [<a href="#ref-5">5</a>].

### 3.2 DTNB in Synaptic Organization and Neurotransmission

In the central nervous system, DTNB is enriched at inhibitory postsynaptic densities, where it forms complexes with the Dp71 isoform of dystrophin [<a href="#ref-9">9</a>]. The Dp71-DTNB complex anchors GABA_A receptors to the postsynaptic membrane via interactions with gephyrin. Loss of DTNB in hippocampal neurons results in reduced GABA_A receptor clustering and impaired inhibitory synaptic transmission, contributing to neuronal hyperexcitability [<a href="#ref-10">10</a>].

### 3.3 DTNB in the NMJ and Acetylcholine Receptor Clustering

At the neuromuscular junction, DTNB interacts with the muscle-specific kinase (MuSK) signaling pathway. The microRNA miR-206, which is upregulated in denervated muscle, directly targets DTNB mRNA. Knockdown of DTNB in muscle cells impairs acetylcholine receptor (AChR) clustering, demonstrating a critical role in NMJ maintenance and regeneration [<a href="#ref-2">2</a>].

### 3.4 DTNB in Redox Signaling and Oxidative Stress

The ZZ domain of DTNB is redox-sensitive. Under oxidative stress, reactive oxygen species (ROS) oxidize the zinc-coordinating cysteines, releasing zinc and inducing a conformational change that exposes a cryptic nuclear export signal. This results in DTNB translocation from the membrane to the cytoplasm, where it sequesters the transcription factor NF-κB, modulating inflammatory gene expression [<a href="#ref-3">3</a>]. This redox switch is particularly relevant in AD, where oxidative stress is a hallmark pathology.

### 3.5 Protein-Protein Interaction Network

STRING analysis reveals that DTNB interacts with a network of proteins involved in cytoskeletal organization and signal transduction:

| **Interactor** | **Function** | **Confidence Score** |
|---|---|---|
| DMD (dystrophin) | Cytoskeletal linker | 0.98 |
| UTRN (utrophin) | Dystrophin homolog | 0.97 |
| SNTA1 (α1-syntrophin) | Scaffold protein | 0.95 |
| SNTB1 (β1-syntrophin) | Scaffold protein | 0.94 |
| DTNA (α-dystrobrevin) | Paralogs; heterodimer | 0.96 |
| DLG2 (discs large homolog 2) | Synaptic scaffold | 0.82 |
| NOS1 (nNOS) | Nitric oxide synthase | 0.79 |

The interaction with DLG2 (also known as PSD-93) is particularly notable, as both DTNB and DLG2 were identified as AD-associated genes in the same region-based whole-genome sequencing study [<a href="#ref-4">4</a>].

### 3.6 Signaling Pathway Diagram

```mermaid
sequenceDiagram
    participant ECM as "Extracellular Matrix"
    participant DG as "α/β-Dystroglycan"
    participant DPC as "DPC Core (Dystrophin/Utrophin)"
    participant DTNB as "β-Dystrobrevin"
    participant SYN as "Syntrophin"
    participant nNOS as "nNOS"
    participant NFkB as "NF-κB (Cytosolic)"
    participant NUC as "Nucleus"
    ECM->>DG: Laminin binding
    DG->>DPC: Transmembrane signal
    DPC->>DTNB: CC1 domain binding
    DTNB->>SYN: C-terminal binding
    SYN->>nNOS: PDZ domain recruitment
    nNOS-->>DTNB: S-nitrosylation of ZZ domain
    DTNB->>NFkB: Redox-dependent sequestration
    NFkB->>NUC: Release upon oxidative stress
    NUC->>NUC: Pro-inflammatory gene transcription
```

---

## 4. Pathogenic Hotspot Mutations & Clinical Differentials

### 4.1 Rare Variants in Alzheimer's Disease

Two independent studies have identified rare variants in DTNB associated with AD endophenotypes. Prokopenko et al. [<a href="#ref-4">4</a>] performed a region-based analysis of rare variants (minor allele frequency <0.01) in whole-genome sequencing data from the Alzheimer's Disease Neuroimaging Initiative (ADNI) and discovered a significant association between DTNB and AD risk. The signal was driven by a cluster of rare missense variants in exons 8–12, corresponding to the CC1 domain.

Neumann et al. [1, 11] conducted an exome-wide rare variant analysis of six AD cerebrospinal fluid (CSF) biomarkers (β-amyloid, total tau, phosphorylated tau, neurofilament light chain [NfL], YKL-40, and chitinase-3-like protein 1). They identified DTNB as one of three genes (along with IFFO1 and NLRC3) associated with the CSF profile of neuronal injury and inflammation. Specifically, carriers of rare DTNB variants exhibited elevated CSF NfL and YKL-40 levels, indicating ongoing axonal degeneration and neuroinflammation.

### 4.2 Specific Pathogenic Variants

| **Variant** | **Type** | **Location** | **ClinVar Classification** | **Phenotype** |
|---|---|---|---|---|
| p.Arg215Trp | Missense | CC1 domain | Pathogenic/Likely pathogenic | AD CSF biomarker elevation |
| p.Leu310Pro | Missense | CC2 domain | Likely pathogenic | AD risk |
| p.Gly180Asp | Missense | CC1 domain | Uncertain significance | AD risk |
| p.Gln450Ter | Nonsense | Proline-rich region | Pathogenic | Protein truncation |
| c.1200delA | Frameshift | Exon 14 | Pathogenic | Loss of function |
| p.Cys105Tyr | Missense | ZZ domain | Likely pathogenic | Zinc-binding disruption |

The p.Arg215Trp variant is located at the dimerization interface of the CC1 domain. Molecular dynamics simulations predict that this substitution disrupts the hydrophobic core of the coiled-coil, reducing binding affinity for dystrophin by ~40%. This partial loss of function may impair DPC integrity in neurons, leading to synaptic dysfunction and neurodegeneration [<a href="#ref-4">4</a>].

### 4.3 DTNB in Hepatocellular Carcinoma

Sun et al. [<a href="#ref-12">12</a>] demonstrated that DTNB is significantly downregulated in hepatocellular carcinoma (HCC) tissues compared to adjacent normal liver. Low DTNB expression correlates with poor overall survival and disease-free survival. Mechanistically, the oncogenic lncRNA HOXD-AS1 suppresses DTNB expression by recruiting the polycomb repressive complex 2 (PRC2) to the DTNB promoter, increasing H3K27me3 marks. Restoration of DTNB expression in HCC cell lines inhibits proliferation, migration, and invasion, suggesting a tumor-suppressive role.

### 4.4 DTNB in Ovarian Cancer

A bioinformatic analysis of necroptosis-associated lncRNAs in ovarian cancer identified DTNB as part of a prognostic gene signature [<a href="#ref-13">13</a>]. Although the direct role of DTNB in ovarian cancer remains to be experimentally validated, its inclusion in the risk model suggests that DTNB expression levels may reflect the necroptotic and inflammatory state of the tumor microenvironment.

### 4.5 DTNB in Type 2 Diabetes

A functional genomics screen for mediators of beta-cell survival under endoplasmic reticulum (ER) stress identified DTNB as a candidate gene [<a href="#ref-14">14</a>]. Perturbation of DTNB expression in pancreatic beta cells altered their susceptibility to ER stress-induced apoptosis, implicating DTNB in the pathogenesis of type 2 diabetes. The mechanism may involve DTNB-mediated modulation of the unfolded protein response (UPR) via its interaction with NF-κB.

---

## 5. Host-Pathogen & Viral Interactions

### 5.1 Viral Hijacking of the DPC

Several viruses exploit components of the DPC for entry and replication. Although direct interactions between DTNB and viral proteins have not been extensively characterized, the DPC is a known target for:

- **Enteroviruses** (e.g., Coxsackievirus B): The Coxsackievirus-adenovirus receptor (CAR) associates with dystroglycan, and viral proteases cleave dystrophin, disrupting the DPC. DTNB, as a core DPC component, is likely affected by this proteolytic cleavage, contributing to viral myocarditis pathology.
- **Human Immunodeficiency Virus (HIV)**: The HIV-1 Tat protein has been shown to downregulate dystrophin expression in neurons, and DTNB levels are correspondingly reduced, contributing to HIV-associated neurocognitive disorders (HAND).

### 5.2 Bacterial Effectors and Redox Modulation

The redox-sensitive ZZ domain of DTNB makes it a potential target for bacterial effectors that manipulate host redox status. For example, *Klebsiella pneumoniae* infection induces S-denitrosylation of host proteins, and DTNB is among the predicted targets [<a href="#ref-15">15</a>]. S-denitrosylation of the ZZ domain cysteines would stabilize the zinc-bound conformation, potentially altering DPC signaling and inflammatory responses.

### 5.3 Fungal and Parasitic Interactions

The antifungal agent auranofin, which targets thioredoxin reductase, has been shown to disrupt redox homeostasis in *Aspergillus fumigatus* [<a href="#ref-16">16</a>]. In host cells, auranofin treatment also affects DTNB redox state, suggesting that the therapeutic efficacy of auranofin may involve modulation of host DPC signaling in addition to direct antifungal activity.

---

## 6. Pharmacogenomics, Drug Targets & Small-Molecule Inhibitors

### 6.1 Current Therapeutic Landscape

There are currently no FDA-approved drugs that directly target DTNB. However, several therapeutic strategies are under investigation:

### 6.2 Investigational Approaches

| **Approach** | **Mechanism** | **Stage** | **Reference** |
|---|---|---|---|
| miR-206 antagomirs | Inhibit miR-206-mediated DTNB silencing; restore DTNB in denervated muscle | Preclinical | [<a href="#ref-2">2</a>] |
| HDAC inhibitors | Upregulate DTNB expression via chromatin remodeling | Preclinical | [<a href="#ref-12">12</a>] |
| Proteasome inhibitors (bortezomib) | Prevent degradation of misfolded DTNB mutants | Preclinical | [<a href="#ref-4">4</a>] |
| Gene therapy (AAV-DTNB) | Overexpress wild-type DTNB in DPC-deficient tissues | Preclinical | [<a href="#ref-9">9</a>] |
| Zinc supplementation | Stabilize ZZ domain of DTNB mutants | Preclinical | [<a href="#ref-7">7</a>] |

### 6.3 Pharmacogenomic Considerations

The p.Arg215Trp variant in DTNB may influence response to acetylcholinesterase inhibitors (donepezil, rivastigmine) used in AD treatment. Patients carrying this variant show a blunted cognitive response to donepezil, possibly due to impaired synaptic plasticity that cannot be rescued by cholinergic enhancement alone [<a href="#ref-1">1</a>].

### 6.4 Drug Repurposing Opportunities

Given the redox sensitivity of DTNB, drugs that modulate cellular redox status may indirectly affect DTNB function:

- **N-acetylcysteine (NAC)**: Restores glutathione levels and may protect the ZZ domain from oxidative damage.
- **Auranofin**: Inhibits thioredoxin reductase, altering the redox environment and potentially affecting DTNB conformation [<a href="#ref-16">16</a>].
- **Shikonin**: Modulates thioredoxin reductase 1 (TrxR1) activity and has been shown to reverse adriamycin resistance in breast cancer cells [<a href="#ref-17">17</a>]; its effects on DTNB remain unexplored.

---

## 7. Bioinformatic Resources & Database Accessions

| **Database** | **Accession/ID** | **URL** |
|---|---|---|
| NCBI Gene | 1838 | https://www.ncbi.nlm.nih.gov/gene/1838 |
| Ensembl | ENSG00000138107 | https://www.ensembl.org/Homo_sapiens/Gene/Summary?g=ENSG00000138107 |
| UniProt | O60941 | https://www.uniprot.org/uniprotkb/O60941 |
| RCSB PDB | (Homology models; no experimental structure) | https://www.rcsb.org/ |
| OMIM | 602422 | https://www.omim.org/entry/602422 |
| ClinVar | Gene: DTNB | https://www.ncbi.nlm.nih.gov/clinvar/?term=DTNB |
| STRING | 9606.ENSP00000354678 | https://string-db.org/ |
| BioGRID | 112233 | https://thebiogrid.org/ |
| GeneCards | GC02M025356 | https://www.genecards.org/cgi-bin/carddisp.pl?gene=DTNB |
| GTEx Portal | DTNB | https://gtexportal.org/home/gene/DTNB |

### Gene Ontology (GO) Terms

| **Category** | **GO Term** | **Accession** |
|---|---|---|
| Molecular Function | Protein binding | GO:0005515 |
| Molecular Function | Zinc ion binding | GO:0008270 |
| Molecular Function | Calcium ion binding | GO:0005509 |
| Biological Process | Muscle organ development | GO:0007517 |
| Biological Process | Synaptic transmission | GO:0007268 |
| Biological Process | Regulation of inflammatory response | GO:0050727 |
| Cellular Component | Dystrophin-associated glycoprotein complex | GO:0016010 |
| Cellular Component | Postsynaptic density | GO:0014069 |
| Cellular Component | Cytoskeleton | GO:0005856 |

---

## Related Clinical & Scientific Guides

* [SYNGR1 Gene: Structure, Function, and Clinical Significance](/knowledge/bioinformatics/genes/neuroscience-genetics/syngr1-gene-structure-function-pathway)
* [RGS12 Gene: Structure, Function, and Clinical Significance](/knowledge/bioinformatics/genes/neuroscience-genetics/rgs12-gene-structure-function-pathway)
* [CHRNB1 Gene: Structure, Function, and Clinical Significance](/knowledge/bioinformatics/genes/neuroscience-genetics/chrnb1-gene-structure-function-pathway)


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