Ontology type: schema:ScholarlyArticle Open Access: True
2007-07-13
AUTHORSErika Nassar, Chris Mulligan, Lem Taylor, Chad Kerksick, Melyn Galbreath, Mike Greenwood, Richard Kreider, Darryn S Willoughby
ABSTRACTMelatonin and resistance exercise alone have been shown to increase the levels of growth hormone (GH). The purpose of this study was to determine the effects of ingestion of a single dose of melatonin and heavy resistance exercise on serum GH, somatostatin (SST), and other hormones of the GH/insulin-like growth factor 1 (IGF-1) axis. Physically active males (n = 30) and females (n = 30) were randomly assigned to ingest either a melatonin supplement at 0.5 mg or 5.0 mg, or 1.0 mg of dextrose placebo. After a baseline blood sample, participants ingested the supplement and underwent blood sampling every 15 min for 60 min, at which point they underwent a single bout of resistance exercise with the leg press for 7 sets of 7 reps at 85% 1-RM. After exercise, participants provided additional blood samples every 15 min for a total of 120 min. Serum free GH, SST, IGF-1, IGFBP-1, and IGFBP-3 were determined with ELISA. Data were evaluated as the peak pre- and post-exercise values subtracted from baseline and the delta values analyzed with separate three-way ANOVA (p < 0.05). In males, when compared to placebo, 5.0 mg melatonin caused GH to increase (p = 0.017) and SST to decrease prior to exercise (p = 0.031), whereas both 0.5 and 5.0 mg melatonin were greater than placebo after exercise (p = 0.045) and less than placebo for SST. No significant differences occurred for IGF-1; however, males were shown to have higher levels of IGFBP-1 independent of supplementation (p = 0.004). The 5.0 mg melatonin dose resulted in higher IGFBP-3 in males (p = 0.017). In conclusion, for males 5.0 mg melatonin appears to increase serum GH while concomitantly lowering SST levels; however, when combined with resistance exercise both melatonin doses positively impacts GH levels in a manner not entirely dependent on SST. More... »
PAGES14
http://scigraph.springernature.com/pub.10.1186/1550-2783-4-14
DOIhttp://dx.doi.org/10.1186/1550-2783-4-14
DIMENSIONShttps://app.dimensions.ai/details/publication/pub.1048858732
PUBMEDhttps://www.ncbi.nlm.nih.gov/pubmed/17956623
JSON-LD is the canonical representation for SciGraph data.
TIP: You can open this SciGraph record using an external JSON-LD service: JSON-LD Playground Google SDTT
[
{
"@context": "https://springernature.github.io/scigraph/jsonld/sgcontext.json",
"about": [
{
"id": "http://purl.org/au-research/vocabulary/anzsrc-for/2008/11",
"inDefinedTermSet": "http://purl.org/au-research/vocabulary/anzsrc-for/2008/",
"name": "Medical and Health Sciences",
"type": "DefinedTerm"
},
{
"id": "http://purl.org/au-research/vocabulary/anzsrc-for/2008/1103",
"inDefinedTermSet": "http://purl.org/au-research/vocabulary/anzsrc-for/2008/",
"name": "Clinical Sciences",
"type": "DefinedTerm"
}
],
"author": [
{
"affiliation": {
"alternateName": "Department of Health, Human Performance, and Recreation, Baylor University, Box 97313, 76798, Waco, TX, USA",
"id": "http://www.grid.ac/institutes/grid.252890.4",
"name": [
"Department of Health, Human Performance, and Recreation, Baylor University, Box 97313, 76798, Waco, TX, USA"
],
"type": "Organization"
},
"familyName": "Nassar",
"givenName": "Erika",
"id": "sg:person.01353623515.69",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01353623515.69"
],
"type": "Person"
},
{
"affiliation": {
"alternateName": "Department of Nutrition and Food Science, Colorado State University, 80523, Fort Collins, CO, USA",
"id": "http://www.grid.ac/institutes/grid.47894.36",
"name": [
"Department of Nutrition and Food Science, Colorado State University, 80523, Fort Collins, CO, USA"
],
"type": "Organization"
},
"familyName": "Mulligan",
"givenName": "Chris",
"id": "sg:person.0623502575.25",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.0623502575.25"
],
"type": "Person"
},
{
"affiliation": {
"alternateName": "Department of Health, Leisure, and Exercise Science, University of West Florida, 32514, Pensacola, FL, USA",
"id": "http://www.grid.ac/institutes/grid.267436.2",
"name": [
"Department of Health, Leisure, and Exercise Science, University of West Florida, 32514, Pensacola, FL, USA"
],
"type": "Organization"
},
"familyName": "Taylor",
"givenName": "Lem",
"id": "sg:person.01122644701.21",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01122644701.21"
],
"type": "Person"
},
{
"affiliation": {
"alternateName": "Department of Health and Exercise Science, University of Oklahoma, 73019-6081, Norman, OK, USA",
"id": "http://www.grid.ac/institutes/grid.266900.b",
"name": [
"Department of Health and Exercise Science, University of Oklahoma, 73019-6081, Norman, OK, USA"
],
"type": "Organization"
},
"familyName": "Kerksick",
"givenName": "Chad",
"id": "sg:person.01033736512.11",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01033736512.11"
],
"type": "Person"
},
{
"affiliation": {
"alternateName": "Department of Health, Human Performance, and Recreation, Baylor University, Box 97313, 76798, Waco, TX, USA",
"id": "http://www.grid.ac/institutes/grid.252890.4",
"name": [
"Department of Health, Human Performance, and Recreation, Baylor University, Box 97313, 76798, Waco, TX, USA"
],
"type": "Organization"
},
"familyName": "Galbreath",
"givenName": "Melyn",
"id": "sg:person.0623362035.83",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.0623362035.83"
],
"type": "Person"
},
{
"affiliation": {
"alternateName": "Department of Health, Human Performance, and Recreation, Baylor University, Box 97313, 76798, Waco, TX, USA",
"id": "http://www.grid.ac/institutes/grid.252890.4",
"name": [
"Department of Health, Human Performance, and Recreation, Baylor University, Box 97313, 76798, Waco, TX, USA"
],
"type": "Organization"
},
"familyName": "Greenwood",
"givenName": "Mike",
"id": "sg:person.01206476136.11",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01206476136.11"
],
"type": "Person"
},
{
"affiliation": {
"alternateName": "Department of Health, Human Performance, and Recreation, Baylor University, Box 97313, 76798, Waco, TX, USA",
"id": "http://www.grid.ac/institutes/grid.252890.4",
"name": [
"Department of Health, Human Performance, and Recreation, Baylor University, Box 97313, 76798, Waco, TX, USA"
],
"type": "Organization"
},
"familyName": "Kreider",
"givenName": "Richard",
"id": "sg:person.01006416301.36",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01006416301.36"
],
"type": "Person"
},
{
"affiliation": {
"alternateName": "Institute for Biomedical Studies, Baylor University, 76798, Waco, TX, USA",
"id": "http://www.grid.ac/institutes/grid.252890.4",
"name": [
"Department of Health, Human Performance, and Recreation, Baylor University, Box 97313, 76798, Waco, TX, USA",
"Institute for Biomedical Studies, Baylor University, 76798, Waco, TX, USA"
],
"type": "Organization"
},
"familyName": "Willoughby",
"givenName": "Darryn S",
"id": "sg:person.01335240466.30",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01335240466.30"
],
"type": "Person"
}
],
"citation": [
{
"id": "sg:pub.10.1007/s00421-005-0119-z",
"sameAs": [
"https://app.dimensions.ai/details/publication/pub.1019367412",
"https://doi.org/10.1007/s00421-005-0119-z"
],
"type": "CreativeWork"
},
{
"id": "sg:pub.10.1007/s004210050456",
"sameAs": [
"https://app.dimensions.ai/details/publication/pub.1028768392",
"https://doi.org/10.1007/s004210050456"
],
"type": "CreativeWork"
},
{
"id": "sg:pub.10.1007/bf00964686",
"sameAs": [
"https://app.dimensions.ai/details/publication/pub.1001811198",
"https://doi.org/10.1007/bf00964686"
],
"type": "CreativeWork"
}
],
"datePublished": "2007-07-13",
"datePublishedReg": "2007-07-13",
"description": "Melatonin and resistance exercise alone have been shown to increase the levels of growth hormone (GH). The purpose of this study was to determine the effects of ingestion of a single dose of melatonin and heavy resistance exercise on serum GH, somatostatin (SST), and other hormones of the GH/insulin-like growth factor 1 (IGF-1) axis. Physically active males (n = 30) and females (n = 30) were randomly assigned to ingest either a melatonin supplement at 0.5 mg or 5.0 mg, or 1.0 mg of dextrose placebo. After a baseline blood sample, participants ingested the supplement and underwent blood sampling every 15 min for 60 min, at which point they underwent a single bout of resistance exercise with the leg press for 7 sets of 7 reps at 85% 1-RM. After exercise, participants provided additional blood samples every 15 min for a total of 120 min. Serum free GH, SST, IGF-1, IGFBP-1, and IGFBP-3 were determined with ELISA. Data were evaluated as the peak pre- and post-exercise values subtracted from baseline and the delta values analyzed with separate three-way ANOVA (p < 0.05). In males, when compared to placebo, 5.0 mg melatonin caused GH to increase (p = 0.017) and SST to decrease prior to exercise (p = 0.031), whereas both 0.5 and 5.0 mg melatonin were greater than placebo after exercise (p = 0.045) and less than placebo for SST. No significant differences occurred for IGF-1; however, males were shown to have higher levels of IGFBP-1 independent of supplementation (p = 0.004). The 5.0 mg melatonin dose resulted in higher IGFBP-3 in males (p = 0.017). In conclusion, for males 5.0 mg melatonin appears to increase serum GH while concomitantly lowering SST levels; however, when combined with resistance exercise both melatonin doses positively impacts GH levels in a manner not entirely dependent on SST.",
"genre": "article",
"id": "sg:pub.10.1186/1550-2783-4-14",
"isAccessibleForFree": true,
"isPartOf": [
{
"id": "sg:journal.1034609",
"issn": [
"1550-2783"
],
"name": "Journal of the International Society of Sports Nutrition",
"publisher": "Taylor & Francis",
"type": "Periodical"
},
{
"issueNumber": "1",
"type": "PublicationIssue"
},
{
"type": "PublicationVolume",
"volumeNumber": "4"
}
],
"keywords": [
"serum growth hormone",
"resistance exercise",
"growth hormone",
"IGFBP-3",
"single dose",
"IGF-1",
"blood samples",
"GH/insulin-like growth factor 1",
"growth hormone/IGF",
"insulin-like growth factor-1",
"higher IGFBP-3",
"baseline blood samples",
"heavy resistance exercise",
"additional blood samples",
"post-exercise values",
"growth factor-1",
"effect of ingestion",
"free growth hormone",
"dextrose placebo",
"underwent blood",
"melatonin dose",
"IGFBP-1",
"melatonin doses",
"GH levels",
"single bout",
"melatonin supplements",
"leg press",
"placebo",
"somatostatin",
"SST levels",
"active males",
"melatonin",
"young males",
"dose",
"factor 1",
"significant differences",
"exercise",
"males",
"hormone",
"N-acetyl",
"min",
"supplements",
"females",
"participants",
"high levels",
"levels",
"IGF",
"ELISA",
"blood",
"doses",
"baseline",
"ingestion",
"supplementation",
"three-way ANOVA",
"delta values",
"bouts",
"total",
"conclusion",
"effect",
"ANOVA",
"samples",
"differences",
"independent",
"study",
"manner",
"axis",
"purpose",
"data",
"values",
"Rep",
"point",
"peak",
"press",
"set"
],
"name": "Effects of a single dose of N-Acetyl-5-methoxytryptamine (Melatonin) and resistance exercise on the growth hormone/IGF-1 axis in young males and females",
"pagination": "14",
"productId": [
{
"name": "dimensions_id",
"type": "PropertyValue",
"value": [
"pub.1048858732"
]
},
{
"name": "doi",
"type": "PropertyValue",
"value": [
"10.1186/1550-2783-4-14"
]
},
{
"name": "pubmed_id",
"type": "PropertyValue",
"value": [
"17956623"
]
}
],
"sameAs": [
"https://doi.org/10.1186/1550-2783-4-14",
"https://app.dimensions.ai/details/publication/pub.1048858732"
],
"sdDataset": "articles",
"sdDatePublished": "2022-08-04T16:57",
"sdLicense": "https://scigraph.springernature.com/explorer/license/",
"sdPublisher": {
"name": "Springer Nature - SN SciGraph project",
"type": "Organization"
},
"sdSource": "s3://com-springernature-scigraph/baseset/20220804/entities/gbq_results/article/article_449.jsonl",
"type": "ScholarlyArticle",
"url": "https://doi.org/10.1186/1550-2783-4-14"
}
]
Download the RDF metadata as: json-ld nt turtle xml License info
JSON-LD is a popular format for linked data which is fully compatible with JSON.
curl -H 'Accept: application/ld+json' 'https://scigraph.springernature.com/pub.10.1186/1550-2783-4-14'
N-Triples is a line-based linked data format ideal for batch operations.
curl -H 'Accept: application/n-triples' 'https://scigraph.springernature.com/pub.10.1186/1550-2783-4-14'
Turtle is a human-readable linked data format.
curl -H 'Accept: text/turtle' 'https://scigraph.springernature.com/pub.10.1186/1550-2783-4-14'
RDF/XML is a standard XML format for linked data.
curl -H 'Accept: application/rdf+xml' 'https://scigraph.springernature.com/pub.10.1186/1550-2783-4-14'
This table displays all metadata directly associated to this object as RDF triples.
206 TRIPLES
21 PREDICATES
102 URIs
91 LITERALS
7 BLANK NODES
Subject | Predicate | Object | |
---|---|---|---|
1 | sg:pub.10.1186/1550-2783-4-14 | schema:about | anzsrc-for:11 |
2 | ″ | ″ | anzsrc-for:1103 |
3 | ″ | schema:author | Naabe1b64c2924130b26d3c4255d8af96 |
4 | ″ | schema:citation | sg:pub.10.1007/bf00964686 |
5 | ″ | ″ | sg:pub.10.1007/s00421-005-0119-z |
6 | ″ | ″ | sg:pub.10.1007/s004210050456 |
7 | ″ | schema:datePublished | 2007-07-13 |
8 | ″ | schema:datePublishedReg | 2007-07-13 |
9 | ″ | schema:description | Melatonin and resistance exercise alone have been shown to increase the levels of growth hormone (GH). The purpose of this study was to determine the effects of ingestion of a single dose of melatonin and heavy resistance exercise on serum GH, somatostatin (SST), and other hormones of the GH/insulin-like growth factor 1 (IGF-1) axis. Physically active males (n = 30) and females (n = 30) were randomly assigned to ingest either a melatonin supplement at 0.5 mg or 5.0 mg, or 1.0 mg of dextrose placebo. After a baseline blood sample, participants ingested the supplement and underwent blood sampling every 15 min for 60 min, at which point they underwent a single bout of resistance exercise with the leg press for 7 sets of 7 reps at 85% 1-RM. After exercise, participants provided additional blood samples every 15 min for a total of 120 min. Serum free GH, SST, IGF-1, IGFBP-1, and IGFBP-3 were determined with ELISA. Data were evaluated as the peak pre- and post-exercise values subtracted from baseline and the delta values analyzed with separate three-way ANOVA (p < 0.05). In males, when compared to placebo, 5.0 mg melatonin caused GH to increase (p = 0.017) and SST to decrease prior to exercise (p = 0.031), whereas both 0.5 and 5.0 mg melatonin were greater than placebo after exercise (p = 0.045) and less than placebo for SST. No significant differences occurred for IGF-1; however, males were shown to have higher levels of IGFBP-1 independent of supplementation (p = 0.004). The 5.0 mg melatonin dose resulted in higher IGFBP-3 in males (p = 0.017). In conclusion, for males 5.0 mg melatonin appears to increase serum GH while concomitantly lowering SST levels; however, when combined with resistance exercise both melatonin doses positively impacts GH levels in a manner not entirely dependent on SST. |
10 | ″ | schema:genre | article |
11 | ″ | schema:isAccessibleForFree | true |
12 | ″ | schema:isPartOf | N3c1b0738e1d4499a91b4926a9a2a4630 |
13 | ″ | ″ | Nfb9c12fb44d64a13884d34f7c38456fa |
14 | ″ | ″ | sg:journal.1034609 |
15 | ″ | schema:keywords | ANOVA |
16 | ″ | ″ | ELISA |
17 | ″ | ″ | GH levels |
18 | ″ | ″ | GH/insulin-like growth factor 1 |
19 | ″ | ″ | IGF |
20 | ″ | ″ | IGF-1 |
21 | ″ | ″ | IGFBP-1 |
22 | ″ | ″ | IGFBP-3 |
23 | ″ | ″ | N-acetyl |
24 | ″ | ″ | Rep |
25 | ″ | ″ | SST levels |
26 | ″ | ″ | active males |
27 | ″ | ″ | additional blood samples |
28 | ″ | ″ | axis |
29 | ″ | ″ | baseline |
30 | ″ | ″ | baseline blood samples |
31 | ″ | ″ | blood |
32 | ″ | ″ | blood samples |
33 | ″ | ″ | bouts |
34 | ″ | ″ | conclusion |
35 | ″ | ″ | data |
36 | ″ | ″ | delta values |
37 | ″ | ″ | dextrose placebo |
38 | ″ | ″ | differences |
39 | ″ | ″ | dose |
40 | ″ | ″ | doses |
41 | ″ | ″ | effect |
42 | ″ | ″ | effect of ingestion |
43 | ″ | ″ | exercise |
44 | ″ | ″ | factor 1 |
45 | ″ | ″ | females |
46 | ″ | ″ | free growth hormone |
47 | ″ | ″ | growth factor-1 |
48 | ″ | ″ | growth hormone |
49 | ″ | ″ | growth hormone/IGF |
50 | ″ | ″ | heavy resistance exercise |
51 | ″ | ″ | high levels |
52 | ″ | ″ | higher IGFBP-3 |
53 | ″ | ″ | hormone |
54 | ″ | ″ | independent |
55 | ″ | ″ | ingestion |
56 | ″ | ″ | insulin-like growth factor-1 |
57 | ″ | ″ | leg press |
58 | ″ | ″ | levels |
59 | ″ | ″ | males |
60 | ″ | ″ | manner |
61 | ″ | ″ | melatonin |
62 | ″ | ″ | melatonin dose |
63 | ″ | ″ | melatonin doses |
64 | ″ | ″ | melatonin supplements |
65 | ″ | ″ | min |
66 | ″ | ″ | participants |
67 | ″ | ″ | peak |
68 | ″ | ″ | placebo |
69 | ″ | ″ | point |
70 | ″ | ″ | post-exercise values |
71 | ″ | ″ | press |
72 | ″ | ″ | purpose |
73 | ″ | ″ | resistance exercise |
74 | ″ | ″ | samples |
75 | ″ | ″ | serum growth hormone |
76 | ″ | ″ | set |
77 | ″ | ″ | significant differences |
78 | ″ | ″ | single bout |
79 | ″ | ″ | single dose |
80 | ″ | ″ | somatostatin |
81 | ″ | ″ | study |
82 | ″ | ″ | supplementation |
83 | ″ | ″ | supplements |
84 | ″ | ″ | three-way ANOVA |
85 | ″ | ″ | total |
86 | ″ | ″ | underwent blood |
87 | ″ | ″ | values |
88 | ″ | ″ | young males |
89 | ″ | schema:name | Effects of a single dose of N-Acetyl-5-methoxytryptamine (Melatonin) and resistance exercise on the growth hormone/IGF-1 axis in young males and females |
90 | ″ | schema:pagination | 14 |
91 | ″ | schema:productId | N4df1b584c24b4a3d978dcb3e92baf544 |
92 | ″ | ″ | N86f3f61524614577b102b516dcb42a29 |
93 | ″ | ″ | Na73d634c9336468eb9abc4e28d741cd5 |
94 | ″ | schema:sameAs | https://app.dimensions.ai/details/publication/pub.1048858732 |
95 | ″ | ″ | https://doi.org/10.1186/1550-2783-4-14 |
96 | ″ | schema:sdDatePublished | 2022-08-04T16:57 |
97 | ″ | schema:sdLicense | https://scigraph.springernature.com/explorer/license/ |
98 | ″ | schema:sdPublisher | Nd73fc4159a464d80a2993802e7bf043f |
99 | ″ | schema:url | https://doi.org/10.1186/1550-2783-4-14 |
100 | ″ | sgo:license | sg:explorer/license/ |
101 | ″ | sgo:sdDataset | articles |
102 | ″ | rdf:type | schema:ScholarlyArticle |
103 | N0ee0ad533a7a40838548019806913f4e | rdf:first | sg:person.01335240466.30 |
104 | ″ | rdf:rest | rdf:nil |
105 | N30781086dbeb48808c64f3f3825f4c00 | rdf:first | sg:person.01122644701.21 |
106 | ″ | rdf:rest | Nacd2339d4963448ea619a6174548edf5 |
107 | N3c1b0738e1d4499a91b4926a9a2a4630 | schema:issueNumber | 1 |
108 | ″ | rdf:type | schema:PublicationIssue |
109 | N4df1b584c24b4a3d978dcb3e92baf544 | schema:name | dimensions_id |
110 | ″ | schema:value | pub.1048858732 |
111 | ″ | rdf:type | schema:PropertyValue |
112 | N5a52acfd7ccf4f8d92ea05103acc84d8 | rdf:first | sg:person.0623502575.25 |
113 | ″ | rdf:rest | N30781086dbeb48808c64f3f3825f4c00 |
114 | N86f3f61524614577b102b516dcb42a29 | schema:name | pubmed_id |
115 | ″ | schema:value | 17956623 |
116 | ″ | rdf:type | schema:PropertyValue |
117 | N8f825901727944c6a8b8770366e775e2 | rdf:first | sg:person.0623362035.83 |
118 | ″ | rdf:rest | Na64ff7e6ef344f14908d0743a4ffd3ef |
119 | Na64ff7e6ef344f14908d0743a4ffd3ef | rdf:first | sg:person.01206476136.11 |
120 | ″ | rdf:rest | Nb9cd0989fb1e4aee95030a57e255df4e |
121 | Na73d634c9336468eb9abc4e28d741cd5 | schema:name | doi |
122 | ″ | schema:value | 10.1186/1550-2783-4-14 |
123 | ″ | rdf:type | schema:PropertyValue |
124 | Naabe1b64c2924130b26d3c4255d8af96 | rdf:first | sg:person.01353623515.69 |
125 | ″ | rdf:rest | N5a52acfd7ccf4f8d92ea05103acc84d8 |
126 | Nacd2339d4963448ea619a6174548edf5 | rdf:first | sg:person.01033736512.11 |
127 | ″ | rdf:rest | N8f825901727944c6a8b8770366e775e2 |
128 | Nb9cd0989fb1e4aee95030a57e255df4e | rdf:first | sg:person.01006416301.36 |
129 | ″ | rdf:rest | N0ee0ad533a7a40838548019806913f4e |
130 | Nd73fc4159a464d80a2993802e7bf043f | schema:name | Springer Nature - SN SciGraph project |
131 | ″ | rdf:type | schema:Organization |
132 | Nfb9c12fb44d64a13884d34f7c38456fa | schema:volumeNumber | 4 |
133 | ″ | rdf:type | schema:PublicationVolume |
134 | anzsrc-for:11 | schema:inDefinedTermSet | anzsrc-for: |
135 | ″ | schema:name | Medical and Health Sciences |
136 | ″ | rdf:type | schema:DefinedTerm |
137 | anzsrc-for:1103 | schema:inDefinedTermSet | anzsrc-for: |
138 | ″ | schema:name | Clinical Sciences |
139 | ″ | rdf:type | schema:DefinedTerm |
140 | sg:journal.1034609 | schema:issn | 1550-2783 |
141 | ″ | schema:name | Journal of the International Society of Sports Nutrition |
142 | ″ | schema:publisher | Taylor & Francis |
143 | ″ | rdf:type | schema:Periodical |
144 | sg:person.01006416301.36 | schema:affiliation | grid-institutes:grid.252890.4 |
145 | ″ | schema:familyName | Kreider |
146 | ″ | schema:givenName | Richard |
147 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01006416301.36 |
148 | ″ | rdf:type | schema:Person |
149 | sg:person.01033736512.11 | schema:affiliation | grid-institutes:grid.266900.b |
150 | ″ | schema:familyName | Kerksick |
151 | ″ | schema:givenName | Chad |
152 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01033736512.11 |
153 | ″ | rdf:type | schema:Person |
154 | sg:person.01122644701.21 | schema:affiliation | grid-institutes:grid.267436.2 |
155 | ″ | schema:familyName | Taylor |
156 | ″ | schema:givenName | Lem |
157 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01122644701.21 |
158 | ″ | rdf:type | schema:Person |
159 | sg:person.01206476136.11 | schema:affiliation | grid-institutes:grid.252890.4 |
160 | ″ | schema:familyName | Greenwood |
161 | ″ | schema:givenName | Mike |
162 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01206476136.11 |
163 | ″ | rdf:type | schema:Person |
164 | sg:person.01335240466.30 | schema:affiliation | grid-institutes:grid.252890.4 |
165 | ″ | schema:familyName | Willoughby |
166 | ″ | schema:givenName | Darryn S |
167 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01335240466.30 |
168 | ″ | rdf:type | schema:Person |
169 | sg:person.01353623515.69 | schema:affiliation | grid-institutes:grid.252890.4 |
170 | ″ | schema:familyName | Nassar |
171 | ″ | schema:givenName | Erika |
172 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.01353623515.69 |
173 | ″ | rdf:type | schema:Person |
174 | sg:person.0623362035.83 | schema:affiliation | grid-institutes:grid.252890.4 |
175 | ″ | schema:familyName | Galbreath |
176 | ″ | schema:givenName | Melyn |
177 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.0623362035.83 |
178 | ″ | rdf:type | schema:Person |
179 | sg:person.0623502575.25 | schema:affiliation | grid-institutes:grid.47894.36 |
180 | ″ | schema:familyName | Mulligan |
181 | ″ | schema:givenName | Chris |
182 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.0623502575.25 |
183 | ″ | rdf:type | schema:Person |
184 | sg:pub.10.1007/bf00964686 | schema:sameAs | https://app.dimensions.ai/details/publication/pub.1001811198 |
185 | ″ | ″ | https://doi.org/10.1007/bf00964686 |
186 | ″ | rdf:type | schema:CreativeWork |
187 | sg:pub.10.1007/s00421-005-0119-z | schema:sameAs | https://app.dimensions.ai/details/publication/pub.1019367412 |
188 | ″ | ″ | https://doi.org/10.1007/s00421-005-0119-z |
189 | ″ | rdf:type | schema:CreativeWork |
190 | sg:pub.10.1007/s004210050456 | schema:sameAs | https://app.dimensions.ai/details/publication/pub.1028768392 |
191 | ″ | ″ | https://doi.org/10.1007/s004210050456 |
192 | ″ | rdf:type | schema:CreativeWork |
193 | grid-institutes:grid.252890.4 | schema:alternateName | Department of Health, Human Performance, and Recreation, Baylor University, Box 97313, 76798, Waco, TX, USA |
194 | ″ | ″ | Institute for Biomedical Studies, Baylor University, 76798, Waco, TX, USA |
195 | ″ | schema:name | Department of Health, Human Performance, and Recreation, Baylor University, Box 97313, 76798, Waco, TX, USA |
196 | ″ | ″ | Institute for Biomedical Studies, Baylor University, 76798, Waco, TX, USA |
197 | ″ | rdf:type | schema:Organization |
198 | grid-institutes:grid.266900.b | schema:alternateName | Department of Health and Exercise Science, University of Oklahoma, 73019-6081, Norman, OK, USA |
199 | ″ | schema:name | Department of Health and Exercise Science, University of Oklahoma, 73019-6081, Norman, OK, USA |
200 | ″ | rdf:type | schema:Organization |
201 | grid-institutes:grid.267436.2 | schema:alternateName | Department of Health, Leisure, and Exercise Science, University of West Florida, 32514, Pensacola, FL, USA |
202 | ″ | schema:name | Department of Health, Leisure, and Exercise Science, University of West Florida, 32514, Pensacola, FL, USA |
203 | ″ | rdf:type | schema:Organization |
204 | grid-institutes:grid.47894.36 | schema:alternateName | Department of Nutrition and Food Science, Colorado State University, 80523, Fort Collins, CO, USA |
205 | ″ | schema:name | Department of Nutrition and Food Science, Colorado State University, 80523, Fort Collins, CO, USA |
206 | ″ | rdf:type | schema:Organization |