Lymphatic contractile function: a comprehensive review of drug effects and potential clinical application

Peter S Russell1,2, Jiwon Hong1,2, Natalie L Trevaskis3

  • 1Applied Surgery and Metabolism Laboratory, School of Biological Sciences, University of Auckland, 3A Symonds Street, Private Bag 92019, Auckland Central, Auckland 1142, New Zealand.

Cardiovascular Research
|August 20, 2021
PubMed

Insights

This review identifies drugs affecting lymphatic pump function, highlighting opportunities for treating lymphatic dysfunction and avoiding adverse drug effects. It found 14 FDA-approved drugs that enhance lymphatic contractions.

Area of Science:

  • Cardiovascular and lymphatic system interactions.
  • Pharmacology of lymphatic contractility.

Background:

  • The lymphatic system, crucial for fluid homeostasis, is often overlooked as a drug target.
  • Lymphatic pump dysfunction leads to edema and is associated with conditions like heart failure and cancer.
  • Current treatments for lymphatic pump dysfunction are lacking.

Purpose of the Study:

  • To identify drugs with direct effects on lymphatic contractions for potential clinical use.
  • To assess existing drugs for positive or negative impacts on lymphatic function.

Main Methods:

  • Comprehensive review of studies on drug effects on lymphatic vessel contractile function.
  • Analysis of 208 drugs from 193 studies.

Main Results:

  • Approximately 25% of reviewed drugs stimulated lymphatic tone, frequency, or amplitude.
  • Fourteen Food and Drug Administration-approved drugs were found to enhance lymphatic contractile function.
  • Calcium channel blockers were the most common drug class inhibiting lymphatic pump function.

Conclusions:

  • Opportunities exist for developing specific drug treatments for lymphatic dysfunction.
  • Awareness of drug effects on lymphatic function can help avoid adverse outcomes.
  • Further research can leverage drug-induced lymphatic contractility modulation for therapeutic benefit.

Related Concept Videos

Lymphatic Vessels and Lymph Transport01:16

Lymphatic Vessels and Lymph Transport

Lymphatic vessels, known as lymphatics, are crucial in transporting lymph from peripheral tissues to our venous system. This process begins with lymph entering through tiny capillaries that branch through tissues. These capillaries have unique features such as larger diameters, thinner walls, and a distinctive one-way valve system formed by overlapping endothelial cells.
This one-way system allows fluids, solutes, and even pathogens to enter but prevents their return to the intercellular...
18.8K
Development of the Lymphatic System01:15

Development of the Lymphatic System

The development of lymphatic tissues and vessels in embryonic life begins around the fifth week. These structures originate from the mesoderm layer, with lymph sacs emerging from developing veins.
The first lymph sacs to form are the paired jugular lymph sacs located at the junction of the internal jugular and subclavian veins. From these sacs, lymphatic capillary plexuses extend to the thorax, upper limbs, neck, and head, eventually forming lymphatic vessels. Each jugular lymph sac maintains a...
1.3K
Functions of the Lymphatic and Immune System01:28

Functions of the Lymphatic and Immune System

The lymphatic system plays a crucial role in bolstering our immune system. It consists of a network of lymphoid organs, lymph, and lymphatic vessels that provide structural and functional support in safeguarding the body against pathogens such as viruses and bacteria.
The primary lymphoid organs, including the bone marrow and the thymus, serve as the maturation sites for lymphocytes. Secondary lymphoid organs, like the mucosa-associated lymphoid tissue, activate these lymphocytes and serve as...
5.0K
The Role of Actin and Myosin in Non-muscle Cells01:10

The Role of Actin and Myosin in Non-muscle Cells

Actin and myosin or actomyosin filaments also play a significant role in cells other than those involved in muscle contraction (which occurs within the sarcomere of muscle cells). The mechanism of non-muscle cell contractile bundles was first observed in Dictyostelium and Acanthamoeba. In non-muscle cells, two bundles are commonly found: stress fibers and actomyosin adherence belts. These contractile bundles are smaller and less organized than the ones found in muscle cells. They  are held...
3.8K
Drugs Affecting GI Tract Motility: Other Laxatives01:20

Drugs Affecting GI Tract Motility: Other Laxatives

Laxatives are primarily used to alleviate constipation, a common gastrointestinal disorder characterized by infrequent bowel movements and difficulty passing stools. They work by various mechanisms to increase the volume or frequency of bowel movements. The primary modes of action of laxatives include increasing stool bulk, softening the stool, stimulating intestinal motility, and osmotically drawing water into the intestines.
Osmotic or saline laxatives, like magnesium hydroxide or milk of...
608
Skeletal Muscle Relaxants: Therapeutic Uses01:31

Skeletal Muscle Relaxants: Therapeutic Uses

Skeletal muscle relaxants are used to relax muscle tone and alleviate painful muscle contractions. However, the choice of skeletal muscle relaxants depends on the duration of the surgical procedure in order to minimize potential side effects. Skeletal muscle relaxants like neuromuscular blocking agents [NMBAs] are commonly employed as adjuvants alongside general anesthetics in clinical settings. NMBAs are also used to maintain controlled ventilation during surgery of the larynx or pharynx...
703