Leucine-Rich Repeat Kinase 2 (LRRK2) in Glucose Metabolism and Metabolic-Neuroinflammatory Crosstalk

Fumitaka Kawakami1,2,3, Motoki Imai3,4,5, Masanori Ogata3,6,7

  • 1Department of Regulation Biochemistry, Graduate School of Medical Sciences, Kitasato University, 1-15-1, Kitasato, Minami-ku, Sagamihara 252-0373, Kanagawa, Japan.

Biomolecules
|May 4, 2026
PubMed

Insights

Leucine-rich repeat kinase 2 (LRRK2) links metabolic dysfunction to neurodegeneration in Parkinson's disease. It coordinates systemic inflammation and insulin resistance, driving neuroinflammation and disease progression.

Area of Science:

  • Neuroscience
  • Metabolic Research
  • Genetics

Background:

  • Leucine-rich repeat kinase 2 (LRRK2) is a key genetic factor in Parkinson's disease (PD).
  • Emerging evidence highlights LRRK2's critical role in systemic metabolism, beyond its known function in neurodegeneration.
  • LRRK2 influences glucose homeostasis via insulin signaling, vesicle trafficking, mitochondrial function, and inflammation.

Purpose of the Study:

  • To explore the role of LRRK2 in systemic metabolism and its connection to neuroinflammation in Parkinson's disease.
  • To propose an integrated model of metabolic-neuroinflammatory crosstalk mediated by LRRK2.

Main Methods:

  • Analysis of LRRK2 knockout and knock-in models, including the G2019S mutation.
  • Investigation of LRRK2's molecular mechanisms, including Rab GTPase phosphorylation and downstream effects.
  • Examination of LRRK2's regulation of innate immune pathways (TLR4-NFκB, inflammasomes).

Main Results:

  • LRRK2 dysregulation in models leads to abnormalities in insulin sensitivity, adipose inflammation, hepatic glucose production, and muscle metabolism.
  • LRRK2 impacts insulin receptor trafficking and GLUT4 translocation via Rab GTPase phosphorylation.
  • LRRK2 influences mitochondrial function, ROS production, and innate immune signaling, linking metabolic stress to neuroinflammation.

Conclusions:

  • LRRK2 acts as a molecular coordinator linking peripheral metabolic dysfunction to central neurodegeneration in PD.
  • Systemic metabolic stress, including insulin resistance and inflammation, drives microglial activation and neurodegeneration.
  • Targeting this metabolic-neuroinflammatory axis offers potential therapeutic strategies for Parkinson's disease.

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