The Gut-Disc Axis: Unraveling the Microbiome's Role in Lumbar Disc Herniation

Luca Ambrosio1,2, Jordy Schol3,4, Stone Sima5

  • 1Operative Research Unit of Orthopaedic and Trauma Surgery, Fondazione Policlinico Universitario Campus Bio-Medico, Rome, Italy.

Neurospine
|February 10, 2026
PubMed

Insights

The gut microbiome may influence lumbar disc herniation (LDH) by affecting inflammation and pain. While preliminary, research suggests gut dysbiosis and disc bacteria play roles, necessitating further investigation into microbiome-targeted therapies for low back pain.

Area of Science:

  • Microbiology
  • Orthopedics
  • Immunology

Background:

  • Lumbar disc herniation (LDH) is a common cause of low back pain, with mechanical and degenerative factors traditionally implicated.
  • Persistent symptoms suggest underlying biological mechanisms beyond mechanical causes.
  • The gut-spine axis concept highlights the microbiome's potential role in inflammation, immune response, and pain sensitization.

Purpose of the Study:

  • To review current evidence on the role of gut and local disc microbiota in lumbar disc herniation (LDH).
  • To explore potential systemic and local mechanisms linking the microbiome to LDH pathophysiology.

Main Methods:

  • Systematic literature search of PubMed/MEDLINE and Scopus up to June 2025.
  • Adherence to PRISMA-ScR (Preferred Reporting Items for Systematic Reviews and Meta-Analyses extension for Scoping Reviews) guidelines.
  • Inclusion of 26 preclinical and clinical studies.

Main Results:

  • Animal models indicate LDH can alter gut microbiota, and microbiome interventions may reduce inflammation and pain.
  • Human studies inconsistently detected bacteria like Cutibacterium acnes in herniated discs, with potential contamination issues.
  • Associations were noted between bacterial colonization and Modic changes, disc height loss, and chronic pain.
  • Gut dysbiosis and microbial metabolites may influence systemic pathways involved in disc degeneration and pain perception.

Conclusions:

  • Evidence suggests biological plausibility for microbiome involvement in LDH pathophysiology via systemic and local mechanisms.
  • Current data are preliminary, lacking mechanistic confirmation of observed correlations.
  • Further standardized, contamination-aware research is needed to establish causality and explore microbiome-based therapies for LDH.

Related Concept Videos

Introduction to the Human Microbiota01:22

Introduction to the Human Microbiota

Microorganisms colonize various regions of the human body, including the mouth, nasal passages, throat, stomach, intestines, urogenital tract, and skin. The total number of microbial cells is estimated to range from 10¹³ to 10¹⁴—comparable to, or exceeding, the number of human somatic cells. This host–microbiome relationship has led to the conceptualization of humans as supraorganisms, wherein microbial communities perform vital roles in development, immunity,...
209
Functions of the Gut Microbiota01:18

Functions of the Gut Microbiota

The gut microbiota includes trillions of microorganisms that colonize the human gastrointestinal tract, including bacteria, archaea, viruses, and fungi. This complex ecosystem plays a critical role in maintaining intestinal and systemic health. Most of these microbes inhabit the large intestine, establishing a relatively stable and diverse community that contributes to gut homeostasis through various metabolic, immunological, and protective mechanisms.Dominant bacterial phyla, such as...
233
Gut-Brain Axis01:22

Gut-Brain Axis

The gut–brain axis is a bidirectional communication system that connects the gastrointestinal tract and the brain. This interaction is mediated through multiple pathways, including the vagus nerve, hormonal signals, immune responses, and chemical messengers produced by gut microbes.Microbial Contributions to Brain FunctionGut microbiota contributes significantly to brain function by producing neuroactive compounds. These include neuroactive compounds that influence neurotransmitters such...
222
Herniated Intervertebral Disc l: Introduction01:29

Herniated Intervertebral Disc l: Introduction

Intervertebral disc herniation refers to the displacement of the nucleus pulposus (the gel-like inner core of the disc) through a tear or weakened area in the annulus fibrosus (the outer fibrous ring). The displaced disc material extends beyond the normal boundaries of the disc space and may compress or irritate nearby spinal nerve roots or, less commonly, the spinal cord.Etiology and Risk FactorsHerniation commonly results from degeneration, in which aging reduces disc hydration and...
40
Degenerative Disc Disease I: Introduction01:27

Degenerative Disc Disease I: Introduction

Degenerative disc disease is a chronic condition in which intervertebral discs gradually lose structure and function. It is not infectious or autoimmune; rather, it results from age-related biochemical and mechanical changes, influenced by genetic, metabolic, and environmental factors.Structure and Function of DiscsThe spine contains 23 intervertebral discs that absorb load, distribute forces, maintain spacing, and allow flexibility. Each disc consists of a nucleus pulposus, a gel-like core...
29
Degenerative Disc Disease ll: Pathophysiology01:23

Degenerative Disc Disease ll: Pathophysiology

The symptoms of degenerative disc disease arise from a combination of mechanical compression, vascular compromise, and biochemical inflammation, which together disrupt nerve function and produce pain.Mechanical CompressionDisc degeneration reduces height and elasticity, predisposing to herniation of the nucleus pulposus, a major cause of radicular pain. Herniations may be protrusion (bulging with intact annulus), extrusion (nucleus extends beyond disc but remains connected), or sequestration...
30