Protein content and amino acid composition of commercially available plant-based protein isolates

Содержание белка и аминокислотный состав коммерчески доступных растительных изолятов белка
Luc J. C. van Loon, Stefan H. M. Gorissen, Julie J. R. Crombag, Joan M. Senden, W. A. Huub Waterval, Jörgen Bierau, Lex B. Verdijk
2018-08-30

UPLC-MS/MSamino acid compositionessential amino acid contentleucine lysine methionineplant-based protein isolates
The postprandial rise in essential amino acid (EAA) concentrations modulates the increase in muscle protein synthesis rates after protein ingestion. The EAA content and AA composition of the dietary protein source contribute to the differential muscle protein synthetic response to the ingestion of different proteins. Lower EAA contents and specific lack of sufficient leucine, lysine, and/or methionine may be responsible for the lower anabolic capacity of plant-based compared with animal-based proteins. We compared EAA contents and AA composition of a large selection of plant-based protein sources with animal-based proteins and human skeletal muscle protein. AA composition of oat, lupin, wheat, hemp, microalgae, soy, brown rice, pea, corn, potato, milk, whey, caseinate, casein, egg, and human skeletal muscle protein were assessed using UPLC-MS/MS. EAA contents of plant-based protein isolates such as oat (21%), lupin (21%), and wheat (22%) were lower than animal-based proteins (whey 43%, milk 39%, casein 34%, and egg 32%) and muscle protein (38%). AA profiles largely differed among plant-based proteins with leucine contents ranging from 5.1% for hemp to 13.5% for corn protein, compared to 9.0% for milk, 7.0% for egg, and 7.6% for muscle protein. Methionine and lysine were typically lower in plant-based proteins (1.0 ± 0.3 and 3.6 ± 0.6%) compared with animal-based proteins (2.5 ± 0.1 and 7.0 ± 0.6%) and muscle protein (2.0 and 7.8%, respectively). In conclusion, there are large differences in EAA contents and AA composition between various plant-based protein isolates. Combinations of various plant-based protein isolates or blends of animal and plant-based proteins can provide protein characteristics that closely reflect the typical characteristics of animal-based proteins.
1
Combining different plant-based protein isolates or blending plant and animal proteins can produce protein profiles that more closely match typical animal-based protein characteristics.
2
Essential amino acid (EAA) contents of several plant-based protein isolates (oat 21%, lupin 21%, wheat 22%) are substantially lower than animal-based proteins (whey 43%, milk 39%, casein 34%, egg 32%) and human muscle protein (38%).
3
Leucine content varies widely across plant proteins (5.1% hemp to 13.5% corn), with many plant proteins differing from animal proteins (milk 9.0%, egg 7.0%) and muscle (7.6%).
4
Methionine and lysine are typically lower in plant-based proteins (methionine 1.0 ± 0.3%, lysine 3.6 ± 0.6%) than in animal-based proteins (methionine 2.5 ± 0.1%, lysine 7.0 ± 0.6%) and muscle protein (methionine 2.0%, lysine 7.8%).
5
There are large differences in EAA contents and amino acid composition among various plant-based protein isolates.

Commercially available plant-based protein isolates (e.g., oat, lupin, wheat, hemp, microalgae, soy, brown rice, pea, corn, potato) compared with animal-based proteins and human skeletal muscle protein

Essential amino acid content and overall amino acid composition (including leucine, lysine, methionine) of those protein isolates and their differences relative to animal-based proteins and human muscle protein

Publication Details
Publication Date
2018-08-30
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Luc J. C. van Loon
Stefan H. M. Gorissen
Julie J. R. Crombag
Joan M. Senden
W. A. Huub Waterval
Jörgen Bierau
Lex B. Verdijk
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%