Thorben Aussieker, Tom A H Janssen, Wesley J H Hermans, Andrew M Holwerda, Joan M Senden, Janneau M X van Kranenburg, Joy P B Goessens, Tim Snijders, Luc J C van Loon
Journal: International journal of sport nutrition and exercise metabolism 2024;34(4):189-198
PMID: 38604602
Exercise increases muscle protein synthesis rates. Protein ingestion during recovery from exercise further increases postexercise muscle protein synthesis rates and can be applied as a nutritional strategy to further augment gains in muscle mass and strength following prolonged resistance exercise training. This study aimed to determine whether coingesting collagen with whey protein could prevent the decline in plasma glycine availability after exercise. This study was a randomised, double-blind, crossover study involving 14 recreationally active men. Participants ingested 30 grams of protein in different combinations of whey and collagen immediately after resistance exercise. Results showed that: - differences in postprandial plasma amino acid concentrations correspond well with the amino acid composition of different whey plus collagen protein blends; - ingestion of 30g whey protein immediately after exercise resulted in a decline in postprandial plasma glycine availability during the acute recovery period; - co-ingesting 5g collagen with 25g whey protein was sufficient to prevent the decline in plasma glycine availability and allowed maintenance of circulating plasma glycine concentrations above baseline values during recovery from a single bout of resistance exercise. Authors concluded that the co-ingestion of a small amount of collagen (5g) with whey protein (25g) is sufficient to prevent the decline in plasma glycine availability during recovery from a single bout of resistance exercise in healthy, young men.
Whey protein ingestion during recovery from exercise increases myofibrillar but not muscle connective protein synthesis rates. It has been speculated that whey protein does not provide sufficient glycine to maximize postexercise muscle connective protein synthesis rates. In the present study, we assessed the impact of coingesting different amounts of collagen with whey protein as a nutritional strategy to increase plasma glycine availability during recovery from exercise. In a randomized, double-blind, crossover design, 14 recreationally active men (age: 26 ± 5 years; body mass index: 23.8 ± 2.1 kg·m-2) ingested in total 30 g protein, provided as whey protein with 0 g (WHEY), 5 g (WC05); 10 g (WC10), and 15 g (WC15) of collagen protein immediately after a single bout of resistance exercise. Blood samples were collected frequently over 6 hr of postexercise recovery to assess postprandial plasma amino acid kinetics and availability. Protein ingestion strongly increased plasma amino acid concentrations (p < .001) with no differences in plasma total amino acid availability between treatments (p > .05). The postprandial rise in plasma leucine and essential amino acid availability was greater in WHEY compared with the WC10 and WC15 treatments (p < .05). Plasma glycine and nonessential amino acid concentrations declined following whey protein ingestion but increased following collagen coingestion (p < .05). Postprandial plasma glycine availability averaged -8.9 ± 5.8, 9.2 ± 3.7, 23.1 ± 6.5, and 39.8 ± 11.0 mmol·360 min/L in WHEY, WC05, WC10, and WC15, respectively (incremental area under curve values, p < .05). Coingestion of a small amount of collagen (5 g) with whey protein (25 g) is sufficient to prevent the decline in plasma glycine availability during recovery from lower body resistance-type exercise in recreationally active men.
Full Text Sources:
© Copyright 2026, Nutrition Evidence
We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.