Uptake of riboflavin by intestinal basolateral membrane vesicles: a specialized carrier-mediated process

H M Said1, D Hollander, R Mohammadkhani

  • 1Medical Research Service, VA Medical Center, Long Beach, CA 90822.

Insights

This study reveals a specialized carrier-mediated mechanism for riboflavin uptake in intestinal basolateral membrane vesicles. This transport system is independent of sodium, pH, and electrical potential, indicating a unique pathway for vitamin absorption.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Gastroenterology

Background:

  • Riboflavin (vitamin B2) is essential for numerous metabolic processes.
  • Understanding its intestinal absorption mechanism is crucial for nutritional science and therapeutic applications.

Purpose of the Study:

  • To elucidate the specific mechanism of riboflavin uptake by intestinal basolateral membrane vesicles (BLMV).
  • To characterize the kinetic and regulatory properties of the identified transport system.

Main Methods:

  • Isolation of BLMV from rabbit small intestine using Percoll-gradient centrifugation.
  • Measurement of [3H]riboflavin uptake kinetics and inhibition studies with structural analogues.
  • Assessment of transport under varying ionic gradients, pH, and electrical potential conditions.

Main Results:

  • Riboflavin uptake into BLMV is primarily via carrier-mediated transport into an osmotically active space.
  • The transport system exhibits saturable kinetics with specific apparent Km and Vmax values in jejunal and ileal BLMV.
  • Uptake is independent of Na+, K+ gradients, pH, and transmembrane electrical potential, but is inhibited by structural analogues like lumiflavin.
  • Trans-stimulation of efflux by unlabeled riboflavin suggests a carrier-mediated process.

Conclusions:

  • A specialized, Na+-independent, pH-independent, and electroneutral carrier-mediated mechanism facilitates riboflavin uptake by intestinal BLMV.
  • This finding clarifies a key aspect of vitamin B2 absorption in the gastrointestinal tract.

Related Concept Videos

Receptor-mediated Endocytosis01:38

Receptor-mediated Endocytosis

Overview
Receptor-mediated Endocytosis01:20

Receptor-mediated Endocytosis

Receptor-mediated endocytosis is when bulk amounts of specific molecules are imported into a cell after binding to cell surface receptors. The molecules bound to these receptors are taken into the cell through inward folding of the cell surface membrane, which is eventually pinched off into a vesicle within the cell. Structural proteins, such as clathrin, coat the budding vesicle.
Clathrin-Mediated Endocytosis of LDL
One well-characterized example of receptor-mediated endocytosis is the...
Receptor-Mediated Endocytosis01:20

Receptor-Mediated Endocytosis

Receptor-mediated endocytosis is when bulk amounts of specific molecules are imported into a cell after binding to cell surface receptors. The molecules bound to these receptors are taken into the cell through inward folding of the cell surface membrane, which is eventually pinched off into a vesicle within the cell. Structural proteins, such as clathrin, coat the budding vesicle.
Clathrin-Mediated Endocytosis of LDL
One well-characterized example of receptor-mediated endocytosis is the...
Drug Absorption Mechanism: Carrier-Mediated Membrane Transport01:19

Drug Absorption Mechanism: Carrier-Mediated Membrane Transport

Certain large, lipid-insoluble drug molecules that resemble amino acids, peptides, or glucose, require specialized carrier proteins to facilitate their diffusion across cell membranes. This transport can occur through either facilitated diffusion, which does not require energy input, or active transport, which does require energy input.
Facilitated diffusion is a passive process that utilizes human Solute Carrier (SLC) transporters. These transporters bind to the drug, undergo structural...
Carrier-Mediated Transport01:06

Carrier-Mediated Transport

Carrier-mediated transport is a pivotal process in drug absorption, particularly for lipid-insoluble drugs, and encompasses facilitated diffusion and active transport. Facilitated diffusion allows drugs to move along their concentration gradient without energy expenditure, while active transport utilizes ATP to drive drug movement against this gradient.
Active transport involves two types of membrane-spanning transporters: uptake and efflux. Uptake transporters are expressed in the small...
Facilitated Diffusion01:16

Facilitated Diffusion

The plasma membrane, a critical structure in cellular biology, houses an array of transporters, or carrier proteins, interspersed within its lipid bilayer. These proteins play a crucial role in solute transport through facilitated diffusion, a form of passive diffusion that uses transporters to move the molecules across the membrane.
In this process, substrates such as organic compounds and ions interact with a transporter on one side, triggering conformational changes in proteins that enable...