Transcriptomic analysis of paternal behaviors in prairie voles.

Alloparenting Lateral septum Medial preoptic area Mitochondria Nucleus Accumbens Parental care RNA translation RNA-sequencing

Journal

BMC genomics
ISSN: 1471-2164
Titre abrégé: BMC Genomics
Pays: England
ID NLM: 100965258

Informations de publication

Date de publication:
01 Oct 2022
Historique:
received: 17 05 2022
accepted: 22 09 2022
entrez: 1 10 2022
pubmed: 2 10 2022
medline: 5 10 2022
Statut: epublish

Résumé

The importance of fathers' engagement in care and its critical role in the offspring's cognitive and emotional development is now well established. Yet, little is known on the underlying neurobiology due to the lack of appropriate animal models. In the socially monogamous and bi-parental prairie vole (Microtus ochrogaster), while 60-80% of virgin males show spontaneous paternal behaviors (Paternal), others display pup-directed aggression (Attackers). Here we took advantage of this phenotypic dichotomy and used RNA-sequencing in three important brain areas to characterize gene expression associated with paternal behaviors of Paternal males and compare it to experienced Fathers and Mothers. While Paternal males displayed the same range and extent of paternal behaviors as experienced Fathers, we observed structure-specific transcriptomic differences between parental behaviors phenotypes. Using differential expression, gene set expression, as well as co-expression network analyses, we found that phenotypic differences between Paternal males and Attackers were mainly reflected by the lateral septum (LS), and to a lower extent, the nucleus accumbens (NAc), transcriptomes. In the medial preoptic area (MPOA), the profiles of gene expression mainly reflected differences between females and males regardless of their parental behaviors phenotype. Functional enrichment analyses of those gene sets associated with Paternal males or Attackers in the LS and the NAc revealed the involvement of processes related to the mitochondria, RNA translation, protein degradation processes, as well as epigenetic regulation of gene expression. By leveraging the natural phenotypic differences in parental behaviors in virgin male prairie voles alongside fathers and mothers, we identified a marked structure- and phenotype-specific pattern of gene expression associated with spontaneous paternal behaviors independently from fatherhood and pair-bonding. The LS transcriptome related to the mitochondria, RNA translation, and protein degradation processes was thus highlighted as a primary candidate associated with the spontaneous display of paternal behaviors. Altogether, our observations further characterize the behavioral and transcriptomic signature of parental behaviors in the socially monogamous prairie vole and lay the groundwork to further our understanding of the molecular underpinnings of paternal behavior.

Sections du résumé

BACKGROUND BACKGROUND
The importance of fathers' engagement in care and its critical role in the offspring's cognitive and emotional development is now well established. Yet, little is known on the underlying neurobiology due to the lack of appropriate animal models. In the socially monogamous and bi-parental prairie vole (Microtus ochrogaster), while 60-80% of virgin males show spontaneous paternal behaviors (Paternal), others display pup-directed aggression (Attackers). Here we took advantage of this phenotypic dichotomy and used RNA-sequencing in three important brain areas to characterize gene expression associated with paternal behaviors of Paternal males and compare it to experienced Fathers and Mothers.
RESULTS RESULTS
While Paternal males displayed the same range and extent of paternal behaviors as experienced Fathers, we observed structure-specific transcriptomic differences between parental behaviors phenotypes. Using differential expression, gene set expression, as well as co-expression network analyses, we found that phenotypic differences between Paternal males and Attackers were mainly reflected by the lateral septum (LS), and to a lower extent, the nucleus accumbens (NAc), transcriptomes. In the medial preoptic area (MPOA), the profiles of gene expression mainly reflected differences between females and males regardless of their parental behaviors phenotype. Functional enrichment analyses of those gene sets associated with Paternal males or Attackers in the LS and the NAc revealed the involvement of processes related to the mitochondria, RNA translation, protein degradation processes, as well as epigenetic regulation of gene expression.
CONCLUSIONS CONCLUSIONS
By leveraging the natural phenotypic differences in parental behaviors in virgin male prairie voles alongside fathers and mothers, we identified a marked structure- and phenotype-specific pattern of gene expression associated with spontaneous paternal behaviors independently from fatherhood and pair-bonding. The LS transcriptome related to the mitochondria, RNA translation, and protein degradation processes was thus highlighted as a primary candidate associated with the spontaneous display of paternal behaviors. Altogether, our observations further characterize the behavioral and transcriptomic signature of parental behaviors in the socially monogamous prairie vole and lay the groundwork to further our understanding of the molecular underpinnings of paternal behavior.

Identifiants

pubmed: 36183097
doi: 10.1186/s12864-022-08912-y
pii: 10.1186/s12864-022-08912-y
pmc: PMC9526941
doi:

Substances chimiques

RNA 63231-63-0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

679

Subventions

Organisme : NIMH NIH HHS
ID : R01 MH058616
Pays : United States
Organisme : NIMH NIH HHS
ID : R01 MH108527
Pays : United States
Organisme : NIMH NIH HHS
ID : R21 MH111998
Pays : United States
Organisme : NIH HHS
ID : R21-MH111998
Pays : United States

Informations de copyright

© 2022. The Author(s).

Références

J Neuroendocrinol. 2021 Aug;33(8):e13001
pubmed: 34189787
IEEE Trans Vis Comput Graph. 2014 Dec;20(12):1983-92
pubmed: 26356912
Behav Neurosci. 2002 Dec;116(6):968-75
pubmed: 12492295
Front Behav Neurosci. 2013 Mar 18;7:21
pubmed: 23515227
Nat Neurosci. 2013 Jul;16(7):919-24
pubmed: 23727821
Behav Brain Res. 2021 Jun 25;408:113264
pubmed: 33775781
Sci Rep. 2015 Nov 25;5:16923
pubmed: 26603754
J Comp Psychol. 1987 Jun;101(2):169-77
pubmed: 3608423
J Neurosci. 2021 Aug 4;41(31):6699-6713
pubmed: 34226275
Nucleic Acids Res. 2002 Jan 1;30(1):207-10
pubmed: 11752295
Eur J Neurosci. 2017 Oct;46(7):2276-2284
pubmed: 28858415
Front Neurosci. 2020 Jul 29;14:797
pubmed: 32848568
Nat Rev Neurosci. 2017 Aug;18(8):471-484
pubmed: 28638119
Nature. 2007 Jan 11;445(7124):168-76
pubmed: 17151600
Endocrinology. 2021 Feb 1;162(2):
pubmed: 33367612
Ann N Y Acad Sci. 1999 Jun 29;877:242-57
pubmed: 10415653
Nature. 2018 Apr;556(7701):326-331
pubmed: 29643503
Cell. 2018 Aug 9;174(4):999-1014.e22
pubmed: 30096314
Integr Comp Biol. 2016 Dec;56(6):1238-1249
pubmed: 27940615
Biol Psychiatry. 2022 Jan 1;91(1):141-151
pubmed: 33549315
Proc Biol Sci. 2015 Nov 22;282(1819):
pubmed: 26609086
OMICS. 2012 May;16(5):284-7
pubmed: 22455463
Proc Natl Acad Sci U S A. 1994 Jan 4;91(1):400-4
pubmed: 8278401
Physiol Behav. 2014 Apr 10;128:252-9
pubmed: 24534169
Trends Neurosci. 2019 Aug;42(8):552-562
pubmed: 31255381
Genome Biol. 2014;15(12):550
pubmed: 25516281
Psychol Bull. 1992 May;111(3):387-412
pubmed: 1594718
Nature. 2004 Jun 17;429(6993):754-7
pubmed: 15201909
Clin Epigenetics. 2021 Jan 30;13(1):23
pubmed: 33516250
Front Neurosci. 2017 Oct 04;11:537
pubmed: 29085274
PLoS One. 2010 Nov 15;5(11):e13984
pubmed: 21085593
J Neurosci. 1994 Sep;14(9):5381-92
pubmed: 8083743
Curr Opin Neurobiol. 2018 Apr;49:116-122
pubmed: 29482085
Front Neuroendocrinol. 2011 Jan;32(1):53-69
pubmed: 20688099
R Soc Open Sci. 2017 Jan 18;4(1):160646
pubmed: 28280564
Bioinformatics. 2018 Sep 1;34(17):i884-i890
pubmed: 30423086
Behav Neurosci. 2001 Dec;115(6):1341-8
pubmed: 11770064
Proc Natl Acad Sci U S A. 2019 Jan 22;116(4):1331-1336
pubmed: 30617061
Neuron. 2017 Oct 11;96(2):313-329.e6
pubmed: 29024657
Horm Behav. 1999 Aug;36(1):25-38
pubmed: 10433884
Horm Behav. 2016 Jan;77:132-40
pubmed: 25910577
Clin Psychol Rev. 2008 Apr;28(4):539-58
pubmed: 17854963
Dev Neurobiol. 2017 Feb;77(2):214-232
pubmed: 27804277
Horm Behav. 2010 Jul;58(2):273-81
pubmed: 20298693
Brain Behav Immun. 2021 Aug;96:168-186
pubmed: 34058309
Psychoneuroendocrinology. 2019 Jan;99:128-136
pubmed: 30227351
Biol Psychiatry. 2017 Feb 1;81(3):231-242
pubmed: 27129413
Am J Orthopsychiatry. 2009 Jan;79(1):39-50
pubmed: 19290724
J Fam Psychol. 2007 Dec;21(4):683-93
pubmed: 18179340
Eur J Neurosci. 2019 Dec;50(11):3689-3701
pubmed: 31423669
Physiol Behav. 2018 Sep 1;193(Pt A):35-42
pubmed: 29730036
Front Behav Neurosci. 2015 Jul 23;9:191
pubmed: 26257619
Genome Res. 2003 Nov;13(11):2498-504
pubmed: 14597658
Physiol Behav. 1999 Mar;66(1):33-40
pubmed: 10222470
F1000Res. 2015 Dec 30;4:1521
pubmed: 26925227
Nat Protoc. 2019 Feb;14(2):482-517
pubmed: 30664679
Elife. 2016 Jul 02;5:
pubmed: 27371827
Nucleic Acids Res. 2021 Jan 8;49(D1):D545-D551
pubmed: 33125081
Neuron. 2019 Apr 17;102(2):435-449.e6
pubmed: 30827729
Neuroendocrinology. 2003 Jul;78(1):36-44
pubmed: 12869798
Behav Neurosci. 2001 Aug;115(4):910-9
pubmed: 11508730
Gen Comp Endocrinol. 2020 Jan 15;286:113337
pubmed: 31734142
Nat Biotechnol. 2016 Dec;34(12):1287-1291
pubmed: 27669167
J Comp Physiol Psychol. 1977 Feb;91(1):146-64
pubmed: 402400
Sci Adv. 2020 Sep 2;6(36):
pubmed: 32917597
J Stat Softw. 2012 Mar;46(11):
pubmed: 23050260
Proc Natl Acad Sci U S A. 2005 Oct 25;102(43):15545-50
pubmed: 16199517
Front Psychiatry. 2011 May 09;2:24
pubmed: 21629841
J Neuroendocrinol. 1999 Jun;11(6):441-9
pubmed: 10336725
Brain Res. 1994 Sep 26;658(1-2):112-8
pubmed: 7834331
Horm Behav. 2017 Apr;90:56-63
pubmed: 28232065
Horm Behav. 2016 May;81:68-73
pubmed: 27074037
Front Ecol Evol. 2018 Jun;6:
pubmed: 31396513
Neuroscience. 2017 Feb 20;343:284-297
pubmed: 27998780
Stat Appl Genet Mol Biol. 2005;4:Article17
pubmed: 16646834
Protein Sci. 2019 Nov;28(11):1947-1951
pubmed: 31441146
Neurobiol Stress. 2020 Nov 24;13:100278
pubmed: 33344730
BMC Bioinformatics. 2008 Dec 29;9:559
pubmed: 19114008
Horm Behav. 2004 May;45(5):354-61
pubmed: 15109910
J Child Psychol Psychiatry. 2014 Nov;55(11):1187-212
pubmed: 24980187
J Neuroendocrinol. 2012 Jun;24(6):874-86
pubmed: 22356098
Nucleic Acids Res. 2015 Jul 1;43(W1):W589-98
pubmed: 25897122
Bioinformatics. 2017 Sep 15;33(18):2938-2940
pubmed: 28645171
Environ Epigenet. 2018 Dec 12;4(4):dvy026
pubmed: 30568805
Neuroscientist. 2015 Jun;21(3):306-21
pubmed: 24871624
Nucleic Acids Res. 2000 Jan 1;28(1):27-30
pubmed: 10592173
Physiol Behav. 1994 Oct;56(4):751-8
pubmed: 7800744
Science. 2015 Dec 11;350(6266):1371-4
pubmed: 26659055
Genome Biol. 2015 Dec 02;16:256
pubmed: 26628058
Nat Methods. 2017 Apr;14(4):417-419
pubmed: 28263959
Q Rev Biol. 1977 Mar;52(1):39-69
pubmed: 857268
Brain Res. 1991 Feb 15;541(2):232-40
pubmed: 2054639
Nat Neurosci. 2014 Mar;17(3):400-6
pubmed: 24487234
Dev Psychobiol. 2007 May;49(4):335-42
pubmed: 17455224
Peptides. 2013 Feb;40:22-9
pubmed: 23262357
Curr Opin Psychol. 2017 Jun;15:87-92
pubmed: 28813276
Neuroscience. 2009 Sep 29;163(1):9-22
pubmed: 19524021
Psychoneuroendocrinology. 2013 Nov;38(11):2554-61
pubmed: 23838102
Physiol Behav. 2007 Nov 23;92(4):617-28
pubmed: 17610916
Acta Paediatr. 2008 Feb;97(2):153-8
pubmed: 18052995
Neurosci Biobehav Rev. 2000 Aug;24(6):669-86
pubmed: 10940441
iScience. 2022 Jun 03;25(7):104525
pubmed: 35754727
Nature. 2018 Dec;564(7735):213-218
pubmed: 30518859
Front Behav Neurosci. 2009 Aug 27;3:17
pubmed: 19753327

Auteurs

Florian Duclot (F)

Department of Biomedical Sciences, Florida State University, Tallahassee, FL, USA. florian.duclot@med.fsu.edu.
Program in Neuroscience, Florida State University, Tallahassee, FL, USA. florian.duclot@med.fsu.edu.

Yan Liu (Y)

Program in Neuroscience, Florida State University, Tallahassee, FL, USA.
Department of Psychology, Florida State University, Tallahassee, FL, USA.

Samantha K Saland (SK)

Department of Biomedical Sciences, Florida State University, Tallahassee, FL, USA.
Program in Neuroscience, Florida State University, Tallahassee, FL, USA.

Zuoxin Wang (Z)

Program in Neuroscience, Florida State University, Tallahassee, FL, USA.
Department of Psychology, Florida State University, Tallahassee, FL, USA.

Mohamed Kabbaj (M)

Department of Biomedical Sciences, Florida State University, Tallahassee, FL, USA. mohamed.kabbaj@med.fsu.edu.
Program in Neuroscience, Florida State University, Tallahassee, FL, USA. mohamed.kabbaj@med.fsu.edu.

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