Metabolomics and proteomics insights into hepatic responses of weaned piglets to dietary Spirulina inclusion and lysozyme supplementation

Background Studying the effect of dietary Spirulina and lysozyme supplementation on the metabolome and proteome of liver tissue contributes to understanding potential hepatic adaptations of piglets to these novel diets. This study aimed to understand the influence of including 10% Spirulina on the m...

Full description

Saved in:
Bibliographic Details
Published in:BMC veterinary research Vol. 20; no. 1; pp. 505 - 29
Main Authors: Martins, Cátia Falcão, Matzapetakis, Manolis, Ribeiro, David M., Kuleš, Josipa, Horvatić, Anita, Guillemin, Nicholas, Eckersall, Peter David, Freire, João P. B., Almeida, André M., Prates, José A. M.
Format: Journal Article
Language:English
Published: London BioMed Central Ltd 06-11-2024
BioMed Central
BMC
Subjects:
Online Access:Get full text
Tags: Add Tag
No Tags, Be the first to tag this record!
Abstract Background Studying the effect of dietary Spirulina and lysozyme supplementation on the metabolome and proteome of liver tissue contributes to understanding potential hepatic adaptations of piglets to these novel diets. This study aimed to understand the influence of including 10% Spirulina on the metabolome and proteome of piglet liver tissue. Three groups of 10 post-weaned piglets, housed in pairs, were fed for 28 days with one of three experimental diets: a cereal and soybean meal-based diet (Control), a base diet with 10% Spirulina (SP), and an SP diet supplemented with 0.01% lysozyme (SP + L). At the end of the trial, animals were sacrificed and liver tissue was collected. Metabolomics analysis (n = 10) was performed using NMR data analysed with PCA and PLS-DA. Proteomics analysis (n = 5) was conducted using a filter aided sample preparation (FASP) protocol and Tandem Mass Tag (TMT)-based quantitative approach with an Orbitrap mass spectrometer. Results Growth performance showed an average daily gain reduction of 9.5% and a feed conversion ratio increase of 10.6% in groups fed Spirulina compared to the control group. Metabolomic analysis revealed no significant differences among the groups and identified 60 metabolites in the liver tissue. Proteomics analysis identified 2,560 proteins, with 132, 11, and 52 differentially expressed in the Control vs. SP, Control vs. SP + L and SP vs. SP + L comparisons, respectively. This study demonstrated that Spirulina enhances liver energy conversion efficiency, detoxification and cellular secretion. It improves hepatic metabolic efficiency through alterations in fatty acid oxidation (e.g., upregulation of enzymes like fatty acid synthase and increased acetyl-CoA levels), carbohydrate catabolism (e.g., increased glucose and glucose-6-phosphate), pyruvate metabolism (e.g., higher levels of pyruvate and phosphoenolpyruvate carboxykinase), and cellular defence mechanisms (e.g., upregulation of glutathione and metallothionein). Lysozyme supplementation mitigates some adverse effects of Spirulina, bringing physiological responses closer to control levels. This includes fewer differentially expressed proteins and improved dry matter, organic matter and energy digestibility. Lysozyme also enhances coenzyme availability, skeletal myofibril assembly, actin-mediated cell contraction, tissue regeneration and development through mesenchymal migration and nucleic acid synthesis pathways. Conclusions While Spirulina inclusion had some adverse effects on growth performance, it also enhanced hepatic metabolic efficiency by improving fatty acid oxidation, carbohydrate catabolism and cellular defence mechanisms. The addition of lysozyme further improved these benefits by reducing some of the negative impacts on growth and enhancing nutrient digestibility, tissue regeneration, and overall metabolic balance. Together, Spirulina and lysozyme demonstrate potential as functional dietary components, but further optimization is needed to fully realize their benefits without compromising growth performance. Keywords: Piglets, Spirulina, Carbohydrase, Lysozyme, Liver proteome, Liver metabolome
AbstractList Studying the effect of dietary Spirulina and lysozyme supplementation on the metabolome and proteome of liver tissue contributes to understanding potential hepatic adaptations of piglets to these novel diets. This study aimed to understand the influence of including 10% Spirulina on the metabolome and proteome of piglet liver tissue. Three groups of 10 post-weaned piglets, housed in pairs, were fed for 28 days with one of three experimental diets: a cereal and soybean meal-based diet (Control), a base diet with 10% Spirulina (SP), and an SP diet supplemented with 0.01% lysozyme (SP + L). At the end of the trial, animals were sacrificed and liver tissue was collected. Metabolomics analysis (n = 10) was performed using NMR data analysed with PCA and PLS-DA. Proteomics analysis (n = 5) was conducted using a filter aided sample preparation (FASP) protocol and Tandem Mass Tag (TMT)-based quantitative approach with an Orbitrap mass spectrometer. Growth performance showed an average daily gain reduction of 9.5% and a feed conversion ratio increase of 10.6% in groups fed Spirulina compared to the control group. Metabolomic analysis revealed no significant differences among the groups and identified 60 metabolites in the liver tissue. Proteomics analysis identified 2,560 proteins, with 132, 11, and 52 differentially expressed in the Control vs. SP, Control vs. SP + L and SP vs. SP + L comparisons, respectively. This study demonstrated that Spirulina enhances liver energy conversion efficiency, detoxification and cellular secretion. It improves hepatic metabolic efficiency through alterations in fatty acid oxidation (e.g., upregulation of enzymes like fatty acid synthase and increased acetyl-CoA levels), carbohydrate catabolism (e.g., increased glucose and glucose-6-phosphate), pyruvate metabolism (e.g., higher levels of pyruvate and phosphoenolpyruvate carboxykinase), and cellular defence mechanisms (e.g., upregulation of glutathione and metallothionein). Lysozyme supplementation mitigates some adverse effects of Spirulina, bringing physiological responses closer to control levels. This includes fewer differentially expressed proteins and improved dry matter, organic matter and energy digestibility. Lysozyme also enhances coenzyme availability, skeletal myofibril assembly, actin-mediated cell contraction, tissue regeneration and development through mesenchymal migration and nucleic acid synthesis pathways. While Spirulina inclusion had some adverse effects on growth performance, it also enhanced hepatic metabolic efficiency by improving fatty acid oxidation, carbohydrate catabolism and cellular defence mechanisms. The addition of lysozyme further improved these benefits by reducing some of the negative impacts on growth and enhancing nutrient digestibility, tissue regeneration, and overall metabolic balance. Together, Spirulina and lysozyme demonstrate potential as functional dietary components, but further optimization is needed to fully realize their benefits without compromising growth performance.
Background Studying the effect of dietary Spirulina and lysozyme supplementation on the metabolome and proteome of liver tissue contributes to understanding potential hepatic adaptations of piglets to these novel diets. This study aimed to understand the influence of including 10% Spirulina on the metabolome and proteome of piglet liver tissue. Three groups of 10 post-weaned piglets, housed in pairs, were fed for 28 days with one of three experimental diets: a cereal and soybean meal-based diet (Control), a base diet with 10% Spirulina (SP), and an SP diet supplemented with 0.01% lysozyme (SP + L). At the end of the trial, animals were sacrificed and liver tissue was collected. Metabolomics analysis (n = 10) was performed using NMR data analysed with PCA and PLS-DA. Proteomics analysis (n = 5) was conducted using a filter aided sample preparation (FASP) protocol and Tandem Mass Tag (TMT)-based quantitative approach with an Orbitrap mass spectrometer. Results Growth performance showed an average daily gain reduction of 9.5% and a feed conversion ratio increase of 10.6% in groups fed Spirulina compared to the control group. Metabolomic analysis revealed no significant differences among the groups and identified 60 metabolites in the liver tissue. Proteomics analysis identified 2,560 proteins, with 132, 11, and 52 differentially expressed in the Control vs. SP, Control vs. SP + L and SP vs. SP + L comparisons, respectively. This study demonstrated that Spirulina enhances liver energy conversion efficiency, detoxification and cellular secretion. It improves hepatic metabolic efficiency through alterations in fatty acid oxidation (e.g., upregulation of enzymes like fatty acid synthase and increased acetyl-CoA levels), carbohydrate catabolism (e.g., increased glucose and glucose-6-phosphate), pyruvate metabolism (e.g., higher levels of pyruvate and phosphoenolpyruvate carboxykinase), and cellular defence mechanisms (e.g., upregulation of glutathione and metallothionein). Lysozyme supplementation mitigates some adverse effects of Spirulina, bringing physiological responses closer to control levels. This includes fewer differentially expressed proteins and improved dry matter, organic matter and energy digestibility. Lysozyme also enhances coenzyme availability, skeletal myofibril assembly, actin-mediated cell contraction, tissue regeneration and development through mesenchymal migration and nucleic acid synthesis pathways. Conclusions While Spirulina inclusion had some adverse effects on growth performance, it also enhanced hepatic metabolic efficiency by improving fatty acid oxidation, carbohydrate catabolism and cellular defence mechanisms. The addition of lysozyme further improved these benefits by reducing some of the negative impacts on growth and enhancing nutrient digestibility, tissue regeneration, and overall metabolic balance. Together, Spirulina and lysozyme demonstrate potential as functional dietary components, but further optimization is needed to fully realize their benefits without compromising growth performance. Keywords: Piglets, Spirulina, Carbohydrase, Lysozyme, Liver proteome, Liver metabolome
Studying the effect of dietary Spirulina and lysozyme supplementation on the metabolome and proteome of liver tissue contributes to understanding potential hepatic adaptations of piglets to these novel diets. This study aimed to understand the influence of including 10% Spirulina on the metabolome and proteome of piglet liver tissue. Three groups of 10 post-weaned piglets, housed in pairs, were fed for 28 days with one of three experimental diets: a cereal and soybean meal-based diet (Control), a base diet with 10% Spirulina (SP), and an SP diet supplemented with 0.01% lysozyme (SP + L). At the end of the trial, animals were sacrificed and liver tissue was collected. Metabolomics analysis (n = 10) was performed using NMR data analysed with PCA and PLS-DA. Proteomics analysis (n = 5) was conducted using a filter aided sample preparation (FASP) protocol and Tandem Mass Tag (TMT)-based quantitative approach with an Orbitrap mass spectrometer.BACKGROUNDStudying the effect of dietary Spirulina and lysozyme supplementation on the metabolome and proteome of liver tissue contributes to understanding potential hepatic adaptations of piglets to these novel diets. This study aimed to understand the influence of including 10% Spirulina on the metabolome and proteome of piglet liver tissue. Three groups of 10 post-weaned piglets, housed in pairs, were fed for 28 days with one of three experimental diets: a cereal and soybean meal-based diet (Control), a base diet with 10% Spirulina (SP), and an SP diet supplemented with 0.01% lysozyme (SP + L). At the end of the trial, animals were sacrificed and liver tissue was collected. Metabolomics analysis (n = 10) was performed using NMR data analysed with PCA and PLS-DA. Proteomics analysis (n = 5) was conducted using a filter aided sample preparation (FASP) protocol and Tandem Mass Tag (TMT)-based quantitative approach with an Orbitrap mass spectrometer.Growth performance showed an average daily gain reduction of 9.5% and a feed conversion ratio increase of 10.6% in groups fed Spirulina compared to the control group. Metabolomic analysis revealed no significant differences among the groups and identified 60 metabolites in the liver tissue. Proteomics analysis identified 2,560 proteins, with 132, 11, and 52 differentially expressed in the Control vs. SP, Control vs. SP + L and SP vs. SP + L comparisons, respectively. This study demonstrated that Spirulina enhances liver energy conversion efficiency, detoxification and cellular secretion. It improves hepatic metabolic efficiency through alterations in fatty acid oxidation (e.g., upregulation of enzymes like fatty acid synthase and increased acetyl-CoA levels), carbohydrate catabolism (e.g., increased glucose and glucose-6-phosphate), pyruvate metabolism (e.g., higher levels of pyruvate and phosphoenolpyruvate carboxykinase), and cellular defence mechanisms (e.g., upregulation of glutathione and metallothionein). Lysozyme supplementation mitigates some adverse effects of Spirulina, bringing physiological responses closer to control levels. This includes fewer differentially expressed proteins and improved dry matter, organic matter and energy digestibility. Lysozyme also enhances coenzyme availability, skeletal myofibril assembly, actin-mediated cell contraction, tissue regeneration and development through mesenchymal migration and nucleic acid synthesis pathways.RESULTSGrowth performance showed an average daily gain reduction of 9.5% and a feed conversion ratio increase of 10.6% in groups fed Spirulina compared to the control group. Metabolomic analysis revealed no significant differences among the groups and identified 60 metabolites in the liver tissue. Proteomics analysis identified 2,560 proteins, with 132, 11, and 52 differentially expressed in the Control vs. SP, Control vs. SP + L and SP vs. SP + L comparisons, respectively. This study demonstrated that Spirulina enhances liver energy conversion efficiency, detoxification and cellular secretion. It improves hepatic metabolic efficiency through alterations in fatty acid oxidation (e.g., upregulation of enzymes like fatty acid synthase and increased acetyl-CoA levels), carbohydrate catabolism (e.g., increased glucose and glucose-6-phosphate), pyruvate metabolism (e.g., higher levels of pyruvate and phosphoenolpyruvate carboxykinase), and cellular defence mechanisms (e.g., upregulation of glutathione and metallothionein). Lysozyme supplementation mitigates some adverse effects of Spirulina, bringing physiological responses closer to control levels. This includes fewer differentially expressed proteins and improved dry matter, organic matter and energy digestibility. Lysozyme also enhances coenzyme availability, skeletal myofibril assembly, actin-mediated cell contraction, tissue regeneration and development through mesenchymal migration and nucleic acid synthesis pathways.While Spirulina inclusion had some adverse effects on growth performance, it also enhanced hepatic metabolic efficiency by improving fatty acid oxidation, carbohydrate catabolism and cellular defence mechanisms. The addition of lysozyme further improved these benefits by reducing some of the negative impacts on growth and enhancing nutrient digestibility, tissue regeneration, and overall metabolic balance. Together, Spirulina and lysozyme demonstrate potential as functional dietary components, but further optimization is needed to fully realize their benefits without compromising growth performance.CONCLUSIONSWhile Spirulina inclusion had some adverse effects on growth performance, it also enhanced hepatic metabolic efficiency by improving fatty acid oxidation, carbohydrate catabolism and cellular defence mechanisms. The addition of lysozyme further improved these benefits by reducing some of the negative impacts on growth and enhancing nutrient digestibility, tissue regeneration, and overall metabolic balance. Together, Spirulina and lysozyme demonstrate potential as functional dietary components, but further optimization is needed to fully realize their benefits without compromising growth performance.
Abstract Background Studying the effect of dietary Spirulina and lysozyme supplementation on the metabolome and proteome of liver tissue contributes to understanding potential hepatic adaptations of piglets to these novel diets. This study aimed to understand the influence of including 10% Spirulina on the metabolome and proteome of piglet liver tissue. Three groups of 10 post-weaned piglets, housed in pairs, were fed for 28 days with one of three experimental diets: a cereal and soybean meal-based diet (Control), a base diet with 10% Spirulina (SP), and an SP diet supplemented with 0.01% lysozyme (SP + L). At the end of the trial, animals were sacrificed and liver tissue was collected. Metabolomics analysis (n = 10) was performed using NMR data analysed with PCA and PLS-DA. Proteomics analysis (n = 5) was conducted using a filter aided sample preparation (FASP) protocol and Tandem Mass Tag (TMT)-based quantitative approach with an Orbitrap mass spectrometer. Results Growth performance showed an average daily gain reduction of 9.5% and a feed conversion ratio increase of 10.6% in groups fed Spirulina compared to the control group. Metabolomic analysis revealed no significant differences among the groups and identified 60 metabolites in the liver tissue. Proteomics analysis identified 2,560 proteins, with 132, 11, and 52 differentially expressed in the Control vs. SP, Control vs. SP + L and SP vs. SP + L comparisons, respectively. This study demonstrated that Spirulina enhances liver energy conversion efficiency, detoxification and cellular secretion. It improves hepatic metabolic efficiency through alterations in fatty acid oxidation (e.g., upregulation of enzymes like fatty acid synthase and increased acetyl-CoA levels), carbohydrate catabolism (e.g., increased glucose and glucose-6-phosphate), pyruvate metabolism (e.g., higher levels of pyruvate and phosphoenolpyruvate carboxykinase), and cellular defence mechanisms (e.g., upregulation of glutathione and metallothionein). Lysozyme supplementation mitigates some adverse effects of Spirulina, bringing physiological responses closer to control levels. This includes fewer differentially expressed proteins and improved dry matter, organic matter and energy digestibility. Lysozyme also enhances coenzyme availability, skeletal myofibril assembly, actin-mediated cell contraction, tissue regeneration and development through mesenchymal migration and nucleic acid synthesis pathways. Conclusions While Spirulina inclusion had some adverse effects on growth performance, it also enhanced hepatic metabolic efficiency by improving fatty acid oxidation, carbohydrate catabolism and cellular defence mechanisms. The addition of lysozyme further improved these benefits by reducing some of the negative impacts on growth and enhancing nutrient digestibility, tissue regeneration, and overall metabolic balance. Together, Spirulina and lysozyme demonstrate potential as functional dietary components, but further optimization is needed to fully realize their benefits without compromising growth performance.
ArticleNumber 505
Audience Academic
Author Prates, José A. M.
Freire, João P. B.
Almeida, André M.
Ribeiro, David M.
Kuleš, Josipa
Eckersall, Peter David
Martins, Cátia Falcão
Horvatić, Anita
Matzapetakis, Manolis
Guillemin, Nicholas
Author_xml – sequence: 1
  givenname: Cátia Falcão
  surname: Martins
  fullname: Martins, Cátia Falcão
– sequence: 2
  givenname: Manolis
  surname: Matzapetakis
  fullname: Matzapetakis, Manolis
– sequence: 3
  givenname: David M.
  surname: Ribeiro
  fullname: Ribeiro, David M.
– sequence: 4
  givenname: Josipa
  surname: Kuleš
  fullname: Kuleš, Josipa
– sequence: 5
  givenname: Anita
  surname: Horvatić
  fullname: Horvatić, Anita
– sequence: 6
  givenname: Nicholas
  surname: Guillemin
  fullname: Guillemin, Nicholas
– sequence: 7
  givenname: Peter David
  surname: Eckersall
  fullname: Eckersall, Peter David
– sequence: 8
  givenname: João P. B.
  surname: Freire
  fullname: Freire, João P. B.
– sequence: 9
  givenname: André M.
  surname: Almeida
  fullname: Almeida, André M.
– sequence: 10
  givenname: José A. M.
  surname: Prates
  fullname: Prates, José A. M.
BookMark eNptkstu1DAUhiNUJNqBF2AViQ2bFJ_YjpMVqioulYpYAGvL48uMK8cOdgIa3oC35sykQoyEvPDt_z-dY_9X1UVM0VbVSyDXAH33pkA7gGhIyxrCKB0a8aS6BMG6pgPWX_yzflZdlfJACGOD6C6r35_srLYppNHrUqto6imn2a5bH4vf7efjYk713k5q9rrOtkwpFlvq5OqfVkWLJr8LFoUoMx6J-VB_mXxego8K3Tosxad44odDSb8Oo63LMk3BjjbOiE3xefXUqVDsi8d5U317_-7r7cfm_vOHu9ub-0ZTxnnjeMvcoE3bE9UNjFqqjSOGguOaiK2gVDOyVbrnuu0GBQZ067gByy3p3QB0U92tXJPUg5yyH7FamZSXp4OUd1Jl7DNYiR4BfKCG9VtGOtoT3QG4XgtHdY8Pvanerqxp2Y7WaOwlq3AGPb-Jfi936YcE4HQQXCDh9SMhp--LLbMcfdE2BHzWtBRJoeVs4KI7Sl-t0p3C2nx0CZH6KJc3PXBoAT8VVdf_UeEwFv8UU-M8np8Z2tWgcyolW_e3fCDyGC65hktiuOQpXFLQP53Ux0A
Cites_doi 10.1038/s41580-019-0108-4
10.1080/09712119.2013.78736
10.1021/acs.jafc.9b05070
10.1111/jpn.13470
10.1016/j.nut.2016.01.020
10.1016/j.jprot.2020.103677
10.1177/1040638720948505
10.4137/BMI.S29511
10.1038/s41598-019-41775-0
10.3389/fphar.2018.00470
10.1038/nmeth.1322
10.1186/s12953-014-0044-3
10.1152/ajplung.00253.2002
10.1016/j.cmet.2019.06.002
10.1016/j.jprot.2018.08.009
10.1111/jpn.12595
10.1093/JN/138.1.60
10.1007/s00253-006-0585-1
10.1093/jn/106.5.710
10.1111/jvp.12493
10.1186/s12917-021-02869-y
10.3390/foods10061155
10.3382/ps/pey093
10.1007/978-3-319-69682-9_21
10.1016/j.jprot.2022.104504
10.3390/ijms18061237
10.1016/j.jnutbio.2012.06.016
10.3389/fphys.2022.857853
10.1016/j.livsci.2017.09.020
10.1002/pmic.201800200
10.1093/jn/134.1.43
10.1016/j.psj.2020.11.034
10.3390/foods10122933
10.3390/ijms17050393
10.1021/acs.jafc.8b05305
10.1016/j.jprot.2021.104274
10.1038/s41598-022-21238-9
10.1136/thoraxjnl-2021-216882
10.1038/s41598-018-34695-y
10.1038/SREP23340
10.1038/S41598-019-45212-0
10.1007/s00894-010-0846-x
10.3390/ph17040473
10.1016/j.nutres.2021.05.005
10.1093/jas/skad151
10.3945/jn.111.155259
10.1021/jf401957z
10.1007/s11427-014-4619-0
10.1016/j.jtherbio.2022.103289
10.1016/j.nut.2012.08.001
10.5772/intechopen.100488
10.1016/j.jprot.2017.10.010
10.1186/2049-1891-4-53
10.1016/J.MOLMET.2019.05.011
10.1016/J.JPROT.2020.104037
10.1371/journal.pone.0081202
10.1016/j.psj.2019.11.069
10.1186/s40104-019-0399-5
10.4141/cjas2011-055
10.1016/j.molmet.2023.101768
10.2174/138920011795713698
10.1111/jpn.13037
10.5187/jast.2020.62.4.460
10.1016/j.jprot.2022.104726
10.3390/app10113950
10.3390/v16030408
ContentType Journal Article
Copyright COPYRIGHT 2024 BioMed Central Ltd.
2024. The Author(s).
The Author(s) 2024 2024
Copyright_xml – notice: COPYRIGHT 2024 BioMed Central Ltd.
– notice: 2024. The Author(s).
– notice: The Author(s) 2024 2024
DBID AAYXX
CITATION
7X8
5PM
DOA
DOI 10.1186/s12917-024-04339-7
DatabaseName CrossRef
MEDLINE - Academic
PubMed Central (Full Participant titles)
Directory of Open Access Journals
DatabaseTitle CrossRef
MEDLINE - Academic
DatabaseTitleList

MEDLINE - Academic

Database_xml – sequence: 1
  dbid: DOA
  name: Directory of Open Access Journals
  url: http://www.doaj.org/
  sourceTypes: Open Website
DeliveryMethod fulltext_linktorsrc
Discipline Veterinary Medicine
EISSN 1746-6148
EndPage 29
ExternalDocumentID oai_doaj_org_article_e5e71593d48b406380c611f8c7f3c804
A815121044
10_1186_s12917_024_04339_7
GeographicLocations Portugal
GeographicLocations_xml – name: Portugal
GroupedDBID ---
-A0
0R~
23N
2WC
2XV
3V.
53G
5GY
5VS
6J9
7X7
88E
8FE
8FH
8FI
8FJ
AAFWJ
AAHBH
AAJSJ
AAYXX
ABDBF
ABUWG
ACGFO
ACGFS
ACIHN
ACPRK
ACRMQ
ADBBV
ADINQ
ADRAZ
ADUKV
AEAQA
AENEX
AFKRA
AFPKN
AFRAH
AHBYD
AHMBA
AHYZX
ALIPV
ALMA_UNASSIGNED_HOLDINGS
AMKLP
AMTXH
AOIJS
APEBS
BAPOH
BAWUL
BCNDV
BENPR
BFQNJ
BMC
BPHCQ
BVXVI
C24
C6C
CCPQU
CITATION
CS3
DIK
DU5
E3Z
EAD
EAP
EAS
EBD
EBLON
EBS
ECGQY
EMB
EMK
EMOBN
ESX
EYRJQ
F5P
FYUFA
GROUPED_DOAJ
HMCUK
HYE
IAG
IAO
IHR
INH
INR
ITC
ITG
ITH
KQ8
M1P
M~E
O5R
O5S
OK1
P2P
PGMZT
PIMPY
PQQKQ
PROAC
PSQYO
RBZ
RNS
ROL
RPM
RSV
SMD
SOJ
SV3
TR2
UKHRP
WOQ
WOW
XSB
7X8
5PM
ID FETCH-LOGICAL-c3455-f524f9cd280a6943e3cdf0d31f5c07b733c40bac85c269a1d1c2f5d1e5e08f913
IEDL.DBID RPM
ISSN 1746-6148
IngestDate Mon Nov 11 19:42:29 EST 2024
Thu Nov 07 05:32:07 EST 2024
Tue Nov 12 16:42:25 EST 2024
Thu Nov 14 01:56:16 EST 2024
Tue Nov 12 04:12:27 EST 2024
Wed Nov 13 12:52:47 EST 2024
IsDoiOpenAccess true
IsOpenAccess true
IsPeerReviewed true
IsScholarly true
Issue 1
Language English
License Open Access This article is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License, which permits any non-commercial use, sharing, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if you modified the licensed material. You do not have permission under this licence to share adapted material derived from this article or parts of it. The images or other third party material in this article are included in the article’s Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by-nc-nd/4.0/.
LinkModel DirectLink
MergedId FETCHMERGED-LOGICAL-c3455-f524f9cd280a6943e3cdf0d31f5c07b733c40bac85c269a1d1c2f5d1e5e08f913
Notes ObjectType-Article-1
SourceType-Scholarly Journals-1
ObjectType-Feature-2
content type line 23
OpenAccessLink https://www.ncbi.nlm.nih.gov/pmc/articles/PMC11539757/
PQID 3125495767
PQPubID 23479
PageCount 29
ParticipantIDs doaj_primary_oai_doaj_org_article_e5e71593d48b406380c611f8c7f3c804
pubmedcentral_primary_oai_pubmedcentral_nih_gov_11539757
proquest_miscellaneous_3125495767
gale_infotracmisc_A815121044
gale_infotracacademiconefile_A815121044
crossref_primary_10_1186_s12917_024_04339_7
PublicationCentury 2000
PublicationDate 2024-11-06
PublicationDateYYYYMMDD 2024-11-06
PublicationDate_xml – month: 11
  year: 2024
  text: 2024-11-06
  day: 06
PublicationDecade 2020
PublicationPlace London
PublicationPlace_xml – name: London
PublicationTitle BMC veterinary research
PublicationYear 2024
Publisher BioMed Central Ltd
BioMed Central
BMC
Publisher_xml – name: BioMed Central Ltd
– name: BioMed Central
– name: BMC
References JH Park (4339_CR5) 2018; 2018
C Liu (4339_CR29) 2013; 24
CF Martins (4339_CR10) 2021; 10
K Wanichthanarak (4339_CR25) 2015; 10
M Parenti (4339_CR34) 2021; 91
R Austic (4339_CR19) 2013; 31
CF Martins (4339_CR14) 2022; 12
H Tran (4339_CR23) 2020; 32
A Bondzio (4339_CR30) 2013; 8
S Ghisaura (4339_CR64) 2014; 12
R Nedeva (4339_CR57) 2014; 20
PC Calder (4339_CR18) 2012; 142
4339_CR54
DM Ribeiro (4339_CR13) 2021; 244
G Yan (4339_CR48) 2016; 6
Q Zhao (4339_CR53) 2014; 57
E Puccinelli (4339_CR50) 2011; 12
CF Martins (4339_CR15) 2022; 269
A Kumar (4339_CR52) 2022; 77
L Yan (4339_CR4) 2013; 4
Y Cui (4339_CR26) 2016; 17
K Lum (4339_CR20) 2013; 4
P Borrajo (4339_CR47) 2020; 10
F Ceciliani (4339_CR22) 2018; 178
C Kalbe (4339_CR6) 2019; 103
MS Madeira (4339_CR17) 2017; 205
4339_CR45
J Liu (4339_CR28) 2013; 29
MM Rinschen (4339_CR36) 2019; 20
WJ Meadus (4339_CR2) 2011; 91
CF Martins (4339_CR12) 2021; 10
J-U Peter (4339_CR61) 2024; 17
CF Martins (4339_CR11) 2021; 105
JR Wiśniewski (4339_CR68) 2009; 6
A Horvatić (4339_CR69) 2018; 192
A Simkus (4339_CR3) 2013; 61
Y Yong (4339_CR41) 2022; 108
M Palma (4339_CR24) 2018
M Backman (4339_CR59) 2019; 2019
K Yu (4339_CR70) 2020; 216
CS Powell (4339_CR65) 2003; 285
CF Martins (4339_CR16) 2021; 10
M López-Pedrouso (4339_CR46) 2021; 232
MSM Madeira (4339_CR9) 2021; 17
A Lepczyński (4339_CR27) 2017; 101
D Böttcher (4339_CR43) 2007; 73
Z Wang (4339_CR33) 2019; 10
Y Li (4339_CR39) 2018; 66
W Schelstraete (4339_CR51) 2019; 9
CM Alfaia (4339_CR8) 2021; 100
D Hasenpusch (4339_CR44) 2011; 17
B Shashikadze (4339_CR58) 2023; 75
C Martino (4339_CR66) 2024; 16
M Howard (4339_CR63) 2018; 18
P Junghans (4339_CR49) 2004; 134
D Coelho (4339_CR21) 2019; 9
DM Ribeiro (4339_CR35) 2022; 256
SL Becker (4339_CR67) 2023; 101
JM Pestana (4339_CR7) 2020; 99
J Liu (4339_CR31) 2016; 32
J Millecam (4339_CR60) 2018; 9
A Krężel (4339_CR40) 2017; 18
NM Dimarco (4339_CR37) 1976; 106
X Wang (4339_CR56) 2022; 13
4339_CR1
C Jang (4339_CR38) 2019; 30
Y Li (4339_CR62) 2018; 41
W Yun (4339_CR42) 2020; 62
J Wang (4339_CR55) 2008; 138
K Yu (4339_CR32) 2019; 67
References_xml – volume: 20
  start-page: 353
  year: 2019
  ident: 4339_CR36
  publication-title: Nat Rev Mol Cell Biol
  doi: 10.1038/s41580-019-0108-4
  contributor:
    fullname: MM Rinschen
– volume: 4
  start-page: 392
  year: 2013
  ident: 4339_CR4
  publication-title: J Appl Anim Res
  doi: 10.1080/09712119.2013.78736
  contributor:
    fullname: L Yan
– volume: 67
  start-page: 13073
  issue: 47
  year: 2019
  ident: 4339_CR32
  publication-title: J Agric Food Chem
  doi: 10.1021/acs.jafc.9b05070
  contributor:
    fullname: K Yu
– volume: 105
  start-page: 247
  year: 2021
  ident: 4339_CR11
  publication-title: J Anim Physiol Anim Nutr
  doi: 10.1111/jpn.13470
  contributor:
    fullname: CF Martins
– volume: 32
  start-page: 871
  issue: 7–8
  year: 2016
  ident: 4339_CR31
  publication-title: Nutrition
  doi: 10.1016/j.nut.2016.01.020
  contributor:
    fullname: J Liu
– volume: 216
  year: 2020
  ident: 4339_CR70
  publication-title: J Proteom
  doi: 10.1016/j.jprot.2020.103677
  contributor:
    fullname: K Yu
– volume: 32
  start-page: 635
  issue: 5
  year: 2020
  ident: 4339_CR23
  publication-title: J Vet Diagn Invest
  doi: 10.1177/1040638720948505
  contributor:
    fullname: H Tran
– volume: 10
  start-page: 1
  issue: Suppl 4
  year: 2015
  ident: 4339_CR25
  publication-title: Biomark Insights
  doi: 10.4137/BMI.S29511
  contributor:
    fullname: K Wanichthanarak
– volume: 9
  start-page: 5382
  year: 2019
  ident: 4339_CR21
  publication-title: Sci Rep
  doi: 10.1038/s41598-019-41775-0
  contributor:
    fullname: D Coelho
– volume: 9
  year: 2018
  ident: 4339_CR60
  publication-title: Front Pharmacol
  doi: 10.3389/fphar.2018.00470
  contributor:
    fullname: J Millecam
– volume: 6
  start-page: 359
  year: 2009
  ident: 4339_CR68
  publication-title: Nat Methods
  doi: 10.1038/nmeth.1322
  contributor:
    fullname: JR Wiśniewski
– volume: 12
  start-page: 44
  issue: 1
  year: 2014
  ident: 4339_CR64
  publication-title: Proteome Sci
  doi: 10.1186/s12953-014-0044-3
  contributor:
    fullname: S Ghisaura
– volume: 285
  start-page: L189
  issue: 1
  year: 2003
  ident: 4339_CR65
  publication-title: Am J Physiol Lung Cell Mol Physiol
  doi: 10.1152/ajplung.00253.2002
  contributor:
    fullname: CS Powell
– volume: 30
  start-page: 594
  issue: 3
  year: 2019
  ident: 4339_CR38
  publication-title: Cell Metab
  doi: 10.1016/j.cmet.2019.06.002
  contributor:
    fullname: C Jang
– volume: 192
  start-page: 64
  year: 2018
  ident: 4339_CR69
  publication-title: J Proteom
  doi: 10.1016/j.jprot.2018.08.009
  contributor:
    fullname: A Horvatić
– volume: 101
  start-page: e225
  issue: 5
  year: 2017
  ident: 4339_CR27
  publication-title: J Anim Physiol Anim Nutr
  doi: 10.1111/jpn.12595
  contributor:
    fullname: A Lepczyński
– ident: 4339_CR1
– volume: 138
  start-page: 60
  issue: 1
  year: 2008
  ident: 4339_CR55
  publication-title: J Nutrition
  doi: 10.1093/JN/138.1.60
  contributor:
    fullname: J Wang
– volume: 73
  start-page: 1282
  issue: 6
  year: 2007
  ident: 4339_CR43
  publication-title: Appl Microbiol Biotechnol
  doi: 10.1007/s00253-006-0585-1
  contributor:
    fullname: D Böttcher
– volume: 106
  start-page: 710
  issue: 5
  year: 1976
  ident: 4339_CR37
  publication-title: J Nutr
  doi: 10.1093/jn/106.5.710
  contributor:
    fullname: NM Dimarco
– volume: 41
  start-page: 562
  issue: 4
  year: 2018
  ident: 4339_CR62
  publication-title: J Vet Pharmacol Ther
  doi: 10.1111/jvp.12493
  contributor:
    fullname: Y Li
– volume: 17
  start-page: 158
  year: 2021
  ident: 4339_CR9
  publication-title: BMC Vet. Res.
  doi: 10.1186/s12917-021-02869-y
  contributor:
    fullname: MSM Madeira
– volume: 10
  year: 2021
  ident: 4339_CR10
  publication-title: Foods
  doi: 10.3390/foods10061155
  contributor:
    fullname: CF Martins
– volume: 2018
  start-page: 2451
  issue: 97
  year: 2018
  ident: 4339_CR5
  publication-title: Poult Sci J
  doi: 10.3382/ps/pey093
  contributor:
    fullname: JH Park
– start-page: 447
  volume-title: Proteomics Domest. Anim. from Farm to Syst
  year: 2018
  ident: 4339_CR24
  doi: 10.1007/978-3-319-69682-9_21
  contributor:
    fullname: M Palma
– volume: 256
  start-page: 104504
  year: 2022
  ident: 4339_CR35
  publication-title: J Proteomics
  doi: 10.1016/j.jprot.2022.104504
  contributor:
    fullname: DM Ribeiro
– volume: 18
  issue: 6
  year: 2017
  ident: 4339_CR40
  publication-title: Int J Mol Sci
  doi: 10.3390/ijms18061237
  contributor:
    fullname: A Krężel
– volume: 24
  start-page: 954
  issue: 6
  year: 2013
  ident: 4339_CR29
  publication-title: J Nutr Biochem
  doi: 10.1016/j.jnutbio.2012.06.016
  contributor:
    fullname: C Liu
– volume: 13
  year: 2022
  ident: 4339_CR56
  publication-title: Front Physiol
  doi: 10.3389/fphys.2022.857853
  contributor:
    fullname: X Wang
– volume: 205
  start-page: 111
  year: 2017
  ident: 4339_CR17
  publication-title: Livest Sci
  doi: 10.1016/j.livsci.2017.09.020
  contributor:
    fullname: MS Madeira
– volume: 18
  issue: 24
  year: 2018
  ident: 4339_CR63
  publication-title: Proteomics
  doi: 10.1002/pmic.201800200
  contributor:
    fullname: M Howard
– volume: 134
  start-page: 43
  issue: 1
  year: 2004
  ident: 4339_CR49
  publication-title: J Nutr
  doi: 10.1093/jn/134.1.43
  contributor:
    fullname: P Junghans
– volume: 100
  start-page: 926
  year: 2021
  ident: 4339_CR8
  publication-title: Poult Sci J
  doi: 10.1016/j.psj.2020.11.034
  contributor:
    fullname: CM Alfaia
– volume: 10
  issue: 12
  year: 2021
  ident: 4339_CR12
  publication-title: Foods
  doi: 10.3390/foods10122933
  contributor:
    fullname: CF Martins
– volume: 17
  issue: 5
  year: 2016
  ident: 4339_CR26
  publication-title: Int J Mol Sci
  doi: 10.3390/ijms17050393
  contributor:
    fullname: Y Cui
– volume: 66
  start-page: 12571
  issue: 47
  year: 2018
  ident: 4339_CR39
  publication-title: J Agric Food Chem
  doi: 10.1021/acs.jafc.8b05305
  contributor:
    fullname: Y Li
– volume: 244
  year: 2021
  ident: 4339_CR13
  publication-title: J Proteom
  doi: 10.1016/j.jprot.2021.104274
  contributor:
    fullname: DM Ribeiro
– volume: 12
  start-page: 16816
  year: 2022
  ident: 4339_CR14
  publication-title: Sci Rep
  doi: 10.1038/s41598-022-21238-9
  contributor:
    fullname: CF Martins
– volume: 77
  start-page: 669
  issue: 7
  year: 2022
  ident: 4339_CR52
  publication-title: Thorax
  doi: 10.1136/thoraxjnl-2021-216882
  contributor:
    fullname: A Kumar
– ident: 4339_CR45
  doi: 10.1038/s41598-018-34695-y
– volume: 6
  year: 2016
  ident: 4339_CR48
  publication-title: Sci Rep
  doi: 10.1038/SREP23340
  contributor:
    fullname: G Yan
– volume: 9
  start-page: 9233
  issue: 1
  year: 2019
  ident: 4339_CR51
  publication-title: Sci Rep
  doi: 10.1038/S41598-019-45212-0
  contributor:
    fullname: W Schelstraete
– volume: 17
  start-page: 1493
  issue: 6
  year: 2011
  ident: 4339_CR44
  publication-title: J Mol Model
  doi: 10.1007/s00894-010-0846-x
  contributor:
    fullname: D Hasenpusch
– volume: 17
  issue: 4
  year: 2024
  ident: 4339_CR61
  publication-title: Pharmaceuticals
  doi: 10.3390/ph17040473
  contributor:
    fullname: J-U Peter
– volume: 91
  start-page: 44
  year: 2021
  ident: 4339_CR34
  publication-title: Nutr Res
  doi: 10.1016/j.nutres.2021.05.005
  contributor:
    fullname: M Parenti
– volume: 101
  year: 2023
  ident: 4339_CR67
  publication-title: J Anim Sci.
  doi: 10.1093/jas/skad151
  contributor:
    fullname: SL Becker
– volume: 142
  start-page: 592S
  year: 2012
  ident: 4339_CR18
  publication-title: J Nutr
  doi: 10.3945/jn.111.155259
  contributor:
    fullname: PC Calder
– volume: 31
  start-page: 7341
  year: 2013
  ident: 4339_CR19
  publication-title: J Agric Food Chem
  doi: 10.1021/jf401957z
  contributor:
    fullname: R Austic
– volume: 57
  start-page: 303
  issue: 3
  year: 2014
  ident: 4339_CR53
  publication-title: Sci China Life Sci
  doi: 10.1007/s11427-014-4619-0
  contributor:
    fullname: Q Zhao
– volume: 108
  year: 2022
  ident: 4339_CR41
  publication-title: J Therm Biol
  doi: 10.1016/j.jtherbio.2022.103289
  contributor:
    fullname: Y Yong
– volume: 29
  start-page: 230
  issue: 1
  year: 2013
  ident: 4339_CR28
  publication-title: Nutrition
  doi: 10.1016/j.nut.2012.08.001
  contributor:
    fullname: J Liu
– ident: 4339_CR54
  doi: 10.5772/intechopen.100488
– volume: 178
  start-page: 92
  year: 2018
  ident: 4339_CR22
  publication-title: J Proteomics
  doi: 10.1016/j.jprot.2017.10.010
  contributor:
    fullname: F Ceciliani
– volume: 20
  start-page: 680
  year: 2014
  ident: 4339_CR57
  publication-title: Bulg J Agric Sci
  contributor:
    fullname: R Nedeva
– volume: 4
  year: 2013
  ident: 4339_CR20
  publication-title: J Anim Sci Biotechnol
  doi: 10.1186/2049-1891-4-53
  contributor:
    fullname: K Lum
– volume: 2019
  start-page: 30
  issue: 26
  year: 2019
  ident: 4339_CR59
  publication-title: Mol Metab
  doi: 10.1016/J.MOLMET.2019.05.011
  contributor:
    fullname: M Backman
– volume: 232
  year: 2021
  ident: 4339_CR46
  publication-title: J Proteomics
  doi: 10.1016/J.JPROT.2020.104037
  contributor:
    fullname: M López-Pedrouso
– volume: 10
  issue: 12
  year: 2021
  ident: 4339_CR16
  publication-title: Foods
  doi: 10.3390/foods10122933
  contributor:
    fullname: CF Martins
– volume: 8
  issue: 11
  year: 2013
  ident: 4339_CR30
  publication-title: PLoS One
  doi: 10.1371/journal.pone.0081202
  contributor:
    fullname: A Bondzio
– volume: 99
  start-page: 2519
  year: 2020
  ident: 4339_CR7
  publication-title: Poult Sci J
  doi: 10.1016/j.psj.2019.11.069
  contributor:
    fullname: JM Pestana
– volume: 10
  start-page: 95
  year: 2019
  ident: 4339_CR33
  publication-title: J Anim Sci Biotechnol
  doi: 10.1186/s40104-019-0399-5
  contributor:
    fullname: Z Wang
– volume: 91
  start-page: 601
  year: 2011
  ident: 4339_CR2
  publication-title: Can J Anim Sci
  doi: 10.4141/cjas2011-055
  contributor:
    fullname: WJ Meadus
– volume: 75
  year: 2023
  ident: 4339_CR58
  publication-title: Mol Metab
  doi: 10.1016/j.molmet.2023.101768
  contributor:
    fullname: B Shashikadze
– volume: 12
  start-page: 507
  year: 2011
  ident: 4339_CR50
  publication-title: Curr Drug Metab
  doi: 10.2174/138920011795713698
  contributor:
    fullname: E Puccinelli
– volume: 61
  start-page: 70
  year: 2013
  ident: 4339_CR3
  publication-title: Vet Med Zoot
  contributor:
    fullname: A Simkus
– volume: 103
  start-page: 574
  year: 2019
  ident: 4339_CR6
  publication-title: J Anim Physiol Anim Nutr
  doi: 10.1111/jpn.13037
  contributor:
    fullname: C Kalbe
– volume: 62
  start-page: 460
  issue: 4
  year: 2020
  ident: 4339_CR42
  publication-title: J Anim Sci Technol
  doi: 10.5187/jast.2020.62.4.460
  contributor:
    fullname: W Yun
– volume: 269
  year: 2022
  ident: 4339_CR15
  publication-title: J Proteom
  doi: 10.1016/j.jprot.2022.104726
  contributor:
    fullname: CF Martins
– volume: 10
  issue: 11
  year: 2020
  ident: 4339_CR47
  publication-title: Appl Sci
  doi: 10.3390/app10113950
  contributor:
    fullname: P Borrajo
– volume: 16
  issue: 3
  year: 2024
  ident: 4339_CR66
  publication-title: Viruses
  doi: 10.3390/v16030408
  contributor:
    fullname: C Martino
SSID ssj0044976
Score 2.4017484
Snippet Background Studying the effect of dietary Spirulina and lysozyme supplementation on the metabolome and proteome of liver tissue contributes to understanding...
Studying the effect of dietary Spirulina and lysozyme supplementation on the metabolome and proteome of liver tissue contributes to understanding potential...
Abstract Background Studying the effect of dietary Spirulina and lysozyme supplementation on the metabolome and proteome of liver tissue contributes to...
SourceID doaj
pubmedcentral
proquest
gale
crossref
SourceType Open Website
Open Access Repository
Aggregation Database
StartPage 505
SubjectTerms Animals
Carbohydrase
Food and nutrition
Health aspects
Infancy
Liver
Liver metabolome
Liver proteome
Lysozyme
Physiological aspects
Piglets
Spirulina
Swine
SummonAdditionalLinks – databaseName: Directory of Open Access Journals
  dbid: DOA
  link: http://sdu.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwrV1Nb9QwELWgJy4ICoilpTISEgcUNYmd2Dn2U72USwFxs5yxTSMtyWqzK1T-Af-aGTtbEThw4ZbETuL4jT0zzswzY29t7YMWtc-clCKTlW6ytm1d1ipbUuolQEyPvrpRH77o8wuiybnf6otiwhI9cOq4Y195hSpXOKlbSfo1h7ooggYVBOiJCTSvd85UmoOlRC27S5HR9fGIWg1nY9RHGRF2NZmaqaHI1v_3nPxnnORviufyCXs8WYz8JLX0KXvg-322_5nCWGIuLb-efo8_Yz-v_QZBXVKm8cht73ikYUinXT-SI04Hm4HfegqlBr5OMbJ-5EPg373FWZevuq-I5sixmuvwifiOm1W3pph1i3fDcktLbPH5y7tx-HH3zfORdgdNkegE9XP26fLi49lVNu21kIGQVZWFqpShAVfq3NaNFF6AC7kTRaggV60SAmTeWtAVlHVjC1dAGSpXIDy5Dk0hXrC9fuj9S8Y12IZ44XwhWgnCN9o7DVqhJSSCle2Cvd91vVklSg0TXRFdmwSUQaBMBMqoBTsldO5rEh12vIBCYiYhMf8SkgV7R9gaGrSIJNgp9wAbTPRX5kST4YOeKdY8nNXEwQaz4jc76TBURBFqvR-2oxEFudrovWGL9UxsZk2fl_TdbWT0RrMc7cJKvfofH3vAHpUk6bT2XR-yvc1661-zh6PbHsVB8gvm2Bmc
  priority: 102
  providerName: Directory of Open Access Journals
Title Metabolomics and proteomics insights into hepatic responses of weaned piglets to dietary Spirulina inclusion and lysozyme supplementation
URI https://www.proquest.com/docview/3125495767
https://pubmed.ncbi.nlm.nih.gov/PMC11539757
https://doaj.org/article/e5e71593d48b406380c611f8c7f3c804
Volume 20
hasFullText 1
inHoldings 1
isFullTextHit
isPrint
link http://sdu.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwnV1Nj9MwELXonrggWECUXSojIXFA2SaxkzjH_dQiVIS0gLhZztjejdQmVdMKLf-Af82M0yACN25t7aSjvrFnxn3zwtgbkzuvRO4iK6WIZKbKqKoqG1WFSan1EiC0R1_fFB-_qYtLksnJh16YQNqHqj5plquTpr4L3Mr1CuYDT2z-aXGOWQyGUSzlJ2yCyeFQo_f7r5QYYYf2GJXPO4xouBNjLIpIrKuMilEICkr9_-7Hf3Mk_wg6V4_Zo322yE97q56wB645ZIdficIS-mj5Yv_X-FP2c-G2COiSuow7bhrLgwRD_7ZuOirC6cW25XeOaNTANz0_1nW89fy7M7jj8nV9i0h2HKfZGu-I33GzrjfEVzd4NSx3dLwW7r-879of9yvHO3oyaM9CJ5ifsS9Xl5_Pr6P9cxYiEDLLIp-l0pdgUxWbvJTCCbA-tiLxGcRFVQgBMq4MqAzSvDSJTSD1mU1c5mLly0Q8ZwdN27gXjCswJWnCuURUEoQrlbMKVIFZkPBGVlP2bvjp9bqX09ChDFG57oHSCJQOQOliys4Ind8zSQo7fNBubvXeITRaUWBOJqxUlaQELIY8SbyCwgtQsZyyt4StpgWLSILZ9x2gwSR9pU8VJT1YleLM49FMXGgwGn49eIemIWKnNa7ddVokVGZj5YYWq5HbjEwfj6BzBzXvwZlf_v-lR-xhSv5Np935MTvYbnbuFZt0djfDKuH9h1k4aZiFZfILmJ8bug
link.rule.ids 230,315,729,782,786,866,887,2106,27933,27934,53800,53802
linkProvider National Library of Medicine
linkToHtml http://sdu.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwnV1Nb9QwELVoOcCFjwLqQgEjIXFA6SaxkzjHUlotolshtSBuljN22ki7yWqzK1T-Af-aGSdBBG69JbGTjDRvPDPOmwljb03qSiVSF1gpRSATlQdFUdigyExMpZcAvjx6dpGdf1cfT6hNTjrUwnjSPhTVYb1YHtbVtedWrpYwHXhi0y_zY4xi0I1iKr_D7qLBhuGQpXcrsJToY4cCGZVOW_RpuBajNwqoXVceZCMn5Hv1_78i_8uS_MvtnD68rcCP2IM-0ORH3fhjdsfVe2zvG7FffAkun_df1Z-wX3O3QSwsqEC55aa23Hdv6E6ruqX8nQ42Db92xMAGvu6ota7lTcl_OIOLNV9VVwiCluM0W-ET8R0Xq2pNVHeDd8NiSztz_vmLm7b5ebN0vKWfinYEdkLIU_b19OTyeBb0v2gIQMgkCcoklmUONlahSXMpnABbhlZEZQJhVmRCgAwLAyqBOM1NZCOIy8RGLnGhKvNIPGO7dVO7fcYVmJzayblIFBKEy5WzClSGAZQojSwm7P2gM73qOnFon8GoVHca1qhh7TWsswn7QGr9M5O6aPsLzfpK96rRKEWG4ZywUhWSYrcQ0igqFWSlABXKCXtHoNBk6wgBMH3JAgpMXbP0kaJ4CRNanHkwmok2CqPhNwOsNA0Rsa12zbbVIqIMHZM-lFiN8DYSfTyCMPONwAdYPb_9ra_Zvdnl_EyffTr__ILdj8lIaNM8PWC7m_XWvWQ7rd2-8vb1G73lL4s
linkToPdf http://sdu.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwpV3fb5RAEN7Ymhhf_FE1nlZdExMfDD1gF1h8q20vNXpNk6rxbQOzuy3JHZDjLqb-B_7XziyHEX3TN44dYJKZ2Znhvvlg7FWRWqdEagMjpQhkovKgLEsTlFkR0-glgB-PPr3Izr6q4xOiyXk7zMJ40D6U1UG9WB7U1ZXHVrZLmA44sen5_AirGEyj2Mq3xk132E0M2jAeOvV-F5YS8-wwJKPSaYd5DfdjzEgBUXblQTZKRJ6v_-9d-U-k5G-pZ3b3f5S-x-5sC05-2MvcZzdsvcf2vhAKxo_i8vn23_UH7MfcrtEnFjSo3PGiNtyzOPQ_q7qjPp4O1g2_soTEBr7qIba2443j32yBmzZvq0t0ho6jmKnwjviMi7ZaEeS9wKthsaE3dP7-i-uu-X69tLyjj4v2QHbylIfs8-zk09FpsP1UQwBCJkngkli6HEyswiLNpbACjAuNiFwCYVZmQoAMywJUAnGaF5GJIHaJiWxiQ-XySDxiu3VT28eMKyhyopWzkSglCJsraxSoDAsp4QpZTtibwW667Rk5tO9kVKp7K2u0svZW1tmEvSPT_pIkNm1_olld6q15NGqRYVknjFSlpBouhDSKnILMCVChnLDX5BiaYh7dAIrt6AIqTOxZ-lBR3YSNLUrujyQxVmG0_HJwLU1LBHCrbbPptIioU8fmDzVWI58bqT5eQVfzhOCDaz3590tfsFvnxzP98f3Zh6fsdkxxQu_O0322u15t7DO205nNcx9iPwEVszIL
openUrl ctx_ver=Z39.88-2004&ctx_enc=info%3Aofi%2Fenc%3AUTF-8&rfr_id=info%3Asid%2Fsummon.serialssolutions.com&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&rft.genre=article&rft.atitle=Metabolomics+and+proteomics+insights+into+hepatic+responses+of+weaned+piglets+to+dietary+Spirulina+inclusion+and+lysozyme+supplementation&rft.jtitle=BMC+veterinary+research&rft.au=Martins%2C+C%C3%A1tia+Falc%C3%A3o&rft.au=Matzapetakis%2C+Manolis&rft.au=Ribeiro%2C+David+M&rft.au=Kule%C5%A1%2C+Josipa&rft.date=2024-11-06&rft.issn=1746-6148&rft.eissn=1746-6148&rft.volume=20&rft.issue=1&rft.spage=505&rft_id=info:doi/10.1186%2Fs12917-024-04339-7&rft.externalDBID=NO_FULL_TEXT
thumbnail_l http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=1746-6148&client=summon
thumbnail_m http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=1746-6148&client=summon
thumbnail_s http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=1746-6148&client=summon