IN02.0002 Harmone sensitive lipase

Learning Objective

Understand the regulation of Hormone-Sensitive Lipase (HSL) by hormonal signaling pathways and master the utilization of post-lipolysis products (free fatty acids and glycerol) by various tissues during starvation.


High-Yield Lipolysis Pathway & Tissue Utilization

Hormone / Tissue Mechanism / Activators Inhibitors / Substrate Utilization
Hormone-Sensitive Lipase (HSL) Activated by: Stress hormones (Catecholamines, Glucagon, ACTH)
Pathway: Gs → cAMP ↑ → PKA → Phosphorylation of HSL
Inhibited by: Insulin
Action: Cleaves stored triglycerides → FFAs + Glycerol
Liver Glycerol → Carbon source for Gluconeogenesis FFAs → oxidized to Acetyl-CoA → Ketone bodies (Acetoacetate, β-hydroxybutyrate) or TCA cycle
Brain Can use Ketone bodies & Glucose Cannot use FFAs (FFAs do not cross the Blood-Brain Barrier)
Erythrocytes (RBCs) Can use Glucose ONLY Cannot use FFAs or Ketones (RBCs lack mitochondria)

Core High-Yield Concepts for NEET PG

  • HSL Molecular Regulation: HSL is active when phosphorylated. Stress hormones trigger the $G_s$ → Adenylate Cyclase → cAMP → Protein Kinase A (PKA) cascade to phosphorylate the enzyme.
  • Insulin Action: Insulin counteracts this mechanism by inducing HSL dephosphorylation, effectively halting lipolysis in the well-fed state.
  • Energy Dynamics in Starvation: The energy derived from hepatic β-oxidation of FFAs provides the ATP required to drive energy-expensive gluconeogenesis.

Critical Exam Discriminators

  1. RBC Fuel Source: Because erythrocytes completely lack mitochondria, they are strictly dependent on anaerobic glycolysis (glucose). They can never oxidize fatty acids or utilize ketone bodies.
  2. The Blood-Brain Barrier (BBB) Trap: Free fatty acids cannot cross the BBB due to their structural limitations and binding to albumin. The brain seamlessly transitions to utilizing water-soluble ketone bodies during prolonged starvation, reducing its overall reliance on glucose.