Mechanisms of SGLT inhibitor action and physiological mediators: systematic review and protocol for the MOSAIC

Luxcia Kugathasan1,2, Massimo Nardone1, Marcel Muskiet1,3

  • 1University Health Network, Toronto, Ontario, Canada.

BMJ Open
|February 26, 2026
PubMed

Insights

Sodium-glucose cotransporter (SGLT) inhibitors benefit cardiovascular and kidney health, but mechanisms are unclear. This meta-analysis aggregates data from 24 studies to clarify SGLT inhibition

Area of Science:

  • Nephrology
  • Cardiology
  • Pharmacology

Background:

  • Sodium-glucose cotransporter (SGLT) inhibitors offer significant cardiovascular and kidney benefits.
  • The precise physiological mechanisms underlying these benefits remain incompletely understood.
  • Existing mechanistic studies have limitations in design, power, and consistency.

Purpose of the Study:

  • To conduct a systematic review and meta-analysis of individual participant data from mechanistic studies.
  • To identify consistent physiological patterns associated with SGLT inhibition.
  • To enhance the understanding of the therapeutic effects of SGLT inhibitors.

Main Methods:

  • Systematic review and individual participant data meta-analysis (IPD MA) using a Bayesian framework.
  • Inclusion of 24 mechanistic studies (n=1296) identified via comprehensive database searches.
  • Extraction of key variables including measured glomerular filtration rate (mGFR), haemodynamics, and biochemical markers.

Main Results:

  • The meta-analysis will aggregate data from 24 studies with 1296 participants.
  • Analysis will focus on primary outcome of measured glomerular filtration rate (mGFR).
  • Exploration of renal haemodynamics, tubular sodium handling, and cardiovascular parameters.

Conclusions:

  • This study represents the first meta-analysis of individual participant data on SGLT inhibitor mechanisms.
  • Findings will provide robust, generalizable conclusions on physiological effects.
  • Enhanced understanding will inform clinical application and future research.
Abstract

Related Concept Videos

Drugs Affecting GI Tract Motility: Serotonin Receptor Agonists01:23

Drugs Affecting GI Tract Motility: Serotonin Receptor Agonists

Serotonin, a crucial neurotransmitter synthesized by enterochromaffin cells, plays a cardinal role in regulating gastrointestinal (GI) motility. With over 90% of the body's total serotonin in the GI tract, its influence on digestive processes is profound. Serotonin is swiftly released upon various stimuli, such as food boluses or certain drugs, triggering intrinsic sensory neurons in the myenteric plexus and extrinsic vagal and spinal sensory neurons. This leads to the activation of the...
1.1K
Pharmacogenetics of Drug Transporters: P-Glycoprotein and Solute Carrier Transporters01:16

Pharmacogenetics of Drug Transporters: P-Glycoprotein and Solute Carrier Transporters

The pharmacogenetics of drug transporters is increasingly recognized as a critical factor influencing interindividual variability in drug absorption, distribution, and elimination. These membrane-bound proteins regulate drugs' movement across cellular barriers by actively pumping them out (efflux) or facilitating their uptake (influx). Among the major transporter families, ATP-binding cassette (ABC) and solute carrier (SLC) transporters play particularly prominent roles. Genetic polymorphisms...
77
Glucose Transporters01:27

Glucose Transporters

Glucose transporters facilitate the transport of glucose across the cell membrane. In addition to glucose, some glucose transporters can also aid the movement of other hexoses such as fructose, mannose, and galactose.
Facilitated diffusion-glucose transporters (GLUTs) are encoded by the solute-linked carrier (SLC) family 2, subfamily A gene family, or SLC2A. The 14 GLUT protein members are distributed into three classes:
27.8K
Oral Hypoglycemic Agents: α-Glucosidase Inhibitors01:19

Oral Hypoglycemic Agents: α-Glucosidase Inhibitors

α-glucosidase inhibitors, including acarbose (Precose), miglitol (Glyset), and voglibose (Voglib) (primarily available in Asia), are drugs that control blood sugar levels by delaying the digestion of starch and disaccharides. They achieve this by inhibiting α-glucosidase enzymes in the intestine, which slow the absorption of carbohydrates in the intestine, which in turn leads to a prolonged release of the glucoregulatory hormone GLP-1 from intestinal L-cells.
Acarbose and miglitol are...
672
Pharmacogenetics of Phase II Enzymes: N-acetyltransferase, Thiopurine S-methyltransferase, UDP-glucuronosyltransferase01:27

Pharmacogenetics of Phase II Enzymes: N-acetyltransferase, Thiopurine S-methyltransferase, UDP-glucuronosyltransferase

Phase II biotransformation reactions are essential for detoxifying and eliminating xenobiotics, including many pharmaceutical compounds. These reactions typically involve conjugation, the covalent attachment of polar endogenous groups such as glucuronic acid, sulfate, methyl, or acetyl moieties to functional groups introduced during Phase I metabolism. The resulting conjugates are more water-soluble, enabling efficient renal or biliary excretion.The major classes of Phase II enzymes include...
42
Dipeptidyl Peptidase 4 Inhibitors01:23

Dipeptidyl Peptidase 4 Inhibitors

Dipeptidyl peptidase 4 (DPP-4) is a serine protease widely distributed in the body. It's involved in the inactivation of GLP-1 and GIP hormones, which are crucial for insulin regulation. DPP-4 inhibitors, such as sitagliptin (Januvia), saxagliptin (Onglyza), linagliptin (Tradjenta), alogliptin (Nesina), and vildagliptin (Galvus), help increase the proportion of active GLP-1, enhancing insulin secretion. These inhibitors work by competitively binding to DPP-4. This binding causes a...
786