Predicting the role of β-GAL genes in bean under abiotic stress and genome-wide characterization of β-GAL gene family members
Β -Gal s are a subgroup of the glycoside hydrolase (GH) family of enzymes, which possess the Glyco_hydro_35 (GH35) domain. Although studies have been conducted on the β-Gal gene family in numerous plant species, no such research has been conducted on beans. The purpose of this study was to determine...
Saved in:
Published in | Protoplasma Vol. 262; no. 2; pp. 365 - 383 |
---|---|
Main Authors | , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Vienna
Springer Vienna
01.03.2025
Springer Nature B.V |
Subjects | |
Online Access | Get full text |
Cover
Loading…
Abstract | Β
-Gal
s are a subgroup of the glycoside hydrolase (GH) family of enzymes, which possess the Glyco_hydro_35 (GH35) domain. Although studies have been conducted on the
β-Gal
gene family in numerous plant species, no such research has been conducted on beans. The purpose of this study was to determine the gene expression levels of
β-Gal
genes in the leaf tissue of
P. vulgaris
under salt and drought stress using quantitative real-time polymerase chain reaction (qRT-PCR) and to perform a comprehensive analysis of
β-Gal
gene family members using bioinformatics tools. In the bean genome, 25 Pvul-βGAL proteins with amino acid numbers ranging from 291 to 1119, molecular weights from 32.94 to 126.56 kDa, and isoelectric points from 5.46 to 9.08 were identified. Both segmental and tandem duplication have occurred in
β-Gal
genes in the bean genome, and
Pvul-BGAL
genes have been subject to negative selection in the evolutionary process. For a deeper comprehension of the evolutionary proximity of
Pvul-BGAL
genes, a phylogenetic tree and synteny map were drawn together with
Arabidopsis thaliana
and
Glycine max β-Gal
genes. The expression profiles of
β-Gal
genes in different tissues of the bean were determined in silico. In addition, the expression profiles of
β-Gal
genes in the leaves of bean plants subjected to drought and salt stress were analyzed, and the role of
β-Gal
genes in salt and drought stress was estimated. In this study, the role of
β-Gal
gene family in abiotic stress response and the characterization of
β-Gal
genes in beans were determined for the first time and will provide a basis for future functional genomics studies. |
---|---|
AbstractList | Β-Gals are a subgroup of the glycoside hydrolase (GH) family of enzymes, which possess the Glyco_hydro_35 (GH35) domain. Although studies have been conducted on the β-Gal gene family in numerous plant species, no such research has been conducted on beans. The purpose of this study was to determine the gene expression levels of β-Gal genes in the leaf tissue of P. vulgaris under salt and drought stress using quantitative real-time polymerase chain reaction (qRT-PCR) and to perform a comprehensive analysis of β-Gal gene family members using bioinformatics tools. In the bean genome, 25 Pvul-βGAL proteins with amino acid numbers ranging from 291 to 1119, molecular weights from 32.94 to 126.56 kDa, and isoelectric points from 5.46 to 9.08 were identified. Both segmental and tandem duplication have occurred in β-Gal genes in the bean genome, and Pvul-BGAL genes have been subject to negative selection in the evolutionary process. For a deeper comprehension of the evolutionary proximity of Pvul-BGAL genes, a phylogenetic tree and synteny map were drawn together with Arabidopsis thaliana and Glycine max β-Gal genes. The expression profiles of β-Gal genes in different tissues of the bean were determined in silico. In addition, the expression profiles of β-Gal genes in the leaves of bean plants subjected to drought and salt stress were analyzed, and the role of β-Gal genes in salt and drought stress was estimated. In this study, the role of β-Gal gene family in abiotic stress response and the characterization of β-Gal genes in beans were determined for the first time and will provide a basis for future functional genomics studies. Β-Gals are a subgroup of the glycoside hydrolase (GH) family of enzymes, which possess the Glyco_hydro_35 (GH35) domain. Although studies have been conducted on the β-Gal gene family in numerous plant species, no such research has been conducted on beans. The purpose of this study was to determine the gene expression levels of β-Gal genes in the leaf tissue of P. vulgaris under salt and drought stress using quantitative real-time polymerase chain reaction (qRT-PCR) and to perform a comprehensive analysis of β-Gal gene family members using bioinformatics tools. In the bean genome, 25 Pvul-βGAL proteins with amino acid numbers ranging from 291 to 1119, molecular weights from 32.94 to 126.56 kDa, and isoelectric points from 5.46 to 9.08 were identified. Both segmental and tandem duplication have occurred in β-Gal genes in the bean genome, and Pvul-BGAL genes have been subject to negative selection in the evolutionary process. For a deeper comprehension of the evolutionary proximity of Pvul-BGAL genes, a phylogenetic tree and synteny map were drawn together with Arabidopsis thaliana and Glycine max β-Gal genes. The expression profiles of β-Gal genes in different tissues of the bean were determined in silico. In addition, the expression profiles of β-Gal genes in the leaves of bean plants subjected to drought and salt stress were analyzed, and the role of β-Gal genes in salt and drought stress was estimated. In this study, the role of β-Gal gene family in abiotic stress response and the characterization of β-Gal genes in beans were determined for the first time and will provide a basis for future functional genomics studies.Β-Gals are a subgroup of the glycoside hydrolase (GH) family of enzymes, which possess the Glyco_hydro_35 (GH35) domain. Although studies have been conducted on the β-Gal gene family in numerous plant species, no such research has been conducted on beans. The purpose of this study was to determine the gene expression levels of β-Gal genes in the leaf tissue of P. vulgaris under salt and drought stress using quantitative real-time polymerase chain reaction (qRT-PCR) and to perform a comprehensive analysis of β-Gal gene family members using bioinformatics tools. In the bean genome, 25 Pvul-βGAL proteins with amino acid numbers ranging from 291 to 1119, molecular weights from 32.94 to 126.56 kDa, and isoelectric points from 5.46 to 9.08 were identified. Both segmental and tandem duplication have occurred in β-Gal genes in the bean genome, and Pvul-BGAL genes have been subject to negative selection in the evolutionary process. For a deeper comprehension of the evolutionary proximity of Pvul-BGAL genes, a phylogenetic tree and synteny map were drawn together with Arabidopsis thaliana and Glycine max β-Gal genes. The expression profiles of β-Gal genes in different tissues of the bean were determined in silico. In addition, the expression profiles of β-Gal genes in the leaves of bean plants subjected to drought and salt stress were analyzed, and the role of β-Gal genes in salt and drought stress was estimated. In this study, the role of β-Gal gene family in abiotic stress response and the characterization of β-Gal genes in beans were determined for the first time and will provide a basis for future functional genomics studies. Β-Gals are a subgroup of the glycoside hydrolase (GH) family of enzymes, which possess the Glyco_hydro_35 (GH35) domain. Although studies have been conducted on the β-Gal gene family in numerous plant species, no such research has been conducted on beans. The purpose of this study was to determine the gene expression levels of β-Gal genes in the leaf tissue of P. vulgaris under salt and drought stress using quantitative real-time polymerase chain reaction (qRT-PCR) and to perform a comprehensive analysis of β-Gal gene family members using bioinformatics tools. In the bean genome, 25 Pvul-βGAL proteins with amino acid numbers ranging from 291 to 1119, molecular weights from 32.94 to 126.56 kDa, and isoelectric points from 5.46 to 9.08 were identified. Both segmental and tandem duplication have occurred in β-Gal genes in the bean genome, and Pvul-BGAL genes have been subject to negative selection in the evolutionary process. For a deeper comprehension of the evolutionary proximity of Pvul-BGAL genes, a phylogenetic tree and synteny map were drawn together with Arabidopsis thaliana and Glycine max β-Gal genes. The expression profiles of β-Gal genes in different tissues of the bean were determined in silico. In addition, the expression profiles of β-Gal genes in the leaves of bean plants subjected to drought and salt stress were analyzed, and the role of β-Gal genes in salt and drought stress was estimated. In this study, the role of β-Gal gene family in abiotic stress response and the characterization of β-Gal genes in beans were determined for the first time and will provide a basis for future functional genomics studies. Β -Gal s are a subgroup of the glycoside hydrolase (GH) family of enzymes, which possess the Glyco_hydro_35 (GH35) domain. Although studies have been conducted on the β-Gal gene family in numerous plant species, no such research has been conducted on beans. The purpose of this study was to determine the gene expression levels of β-Gal genes in the leaf tissue of P. vulgaris under salt and drought stress using quantitative real-time polymerase chain reaction (qRT-PCR) and to perform a comprehensive analysis of β-Gal gene family members using bioinformatics tools. In the bean genome, 25 Pvul-βGAL proteins with amino acid numbers ranging from 291 to 1119, molecular weights from 32.94 to 126.56 kDa, and isoelectric points from 5.46 to 9.08 were identified. Both segmental and tandem duplication have occurred in β-Gal genes in the bean genome, and Pvul-BGAL genes have been subject to negative selection in the evolutionary process. For a deeper comprehension of the evolutionary proximity of Pvul-BGAL genes, a phylogenetic tree and synteny map were drawn together with Arabidopsis thaliana and Glycine max β-Gal genes. The expression profiles of β-Gal genes in different tissues of the bean were determined in silico. In addition, the expression profiles of β-Gal genes in the leaves of bean plants subjected to drought and salt stress were analyzed, and the role of β-Gal genes in salt and drought stress was estimated. In this study, the role of β-Gal gene family in abiotic stress response and the characterization of β-Gal genes in beans were determined for the first time and will provide a basis for future functional genomics studies. |
Author | Buttanri, Azize Yildirim, Ertan Kasapoğlu, Ayşe Gül Öner, Burak Muhammed Aygören, Ahmed Sidar İlhan, Emre Muslu, Selman Aydin, Murat |
Author_xml | – sequence: 1 givenname: Azize orcidid: 0009-0005-7398-0083 surname: Buttanri fullname: Buttanri, Azize organization: Department of Molecular Biology and Genetics, Faculty of Science, Erzurum Technical University – sequence: 2 givenname: Ayşe Gül orcidid: 0000-0002-6447-4921 surname: Kasapoğlu fullname: Kasapoğlu, Ayşe Gül email: aysegul.kasapoglu@erzurum.edu.tr organization: Department of Molecular Biology and Genetics, Faculty of Science, Erzurum Technical University – sequence: 3 givenname: Burak Muhammed orcidid: 0000-0003-2785-2089 surname: Öner fullname: Öner, Burak Muhammed organization: Department of Molecular Biology and Genetics, Faculty of Science, Erzurum Technical University – sequence: 4 givenname: Ahmed Sidar orcidid: 0000-0002-6264-9935 surname: Aygören fullname: Aygören, Ahmed Sidar organization: Department of Molecular Biology and Genetics, Faculty of Science, Erzurum Technical University – sequence: 5 givenname: Selman orcidid: 0000-0003-4777-0726 surname: Muslu fullname: Muslu, Selman organization: Department of Molecular Biology and Genetics, Faculty of Science, Erzurum Technical University – sequence: 6 givenname: Emre orcidid: 0000-0002-8404-7900 surname: İlhan fullname: İlhan, Emre organization: Department of Molecular Biology and Genetics, Faculty of Science, Erzurum Technical University, Ata-Teknokent, GeneXCell Biotechnology, Ataturk University – sequence: 7 givenname: Ertan orcidid: 0000-0003-3369-0645 surname: Yildirim fullname: Yildirim, Ertan organization: Department of Agricultural Biotechnology, Faculty of Agriculture, Ataturk University, Department of Garden Plants, Faculty of Agriculture, Ataturk University – sequence: 8 givenname: Murat orcidid: 0000-0003-1091-0609 surname: Aydin fullname: Aydin, Murat organization: Department of Agricultural Biotechnology, Faculty of Agriculture, Ataturk University |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/39441340$$D View this record in MEDLINE/PubMed |
BookMark | eNqFkc9u1DAQhy1URLeFF-CALHHpxTD-k8Q5VhUUpJXgABK3yHEmW1eJXWxHqHvhnfogPBPebgFpD-Xi8eH7Zuz5nZAjHzwS8pLDGw7QvE3lgJaBUAx422q2fUJWvOYVqzmII7ICkJJxLb8dk5OUrgGgElA9I8eyVYpLBSvy83PEwdns_IbmK6QxTEjDSH_dscvzNd2gx0Sdpz0aTxc_YKSmdyE7S1OOmBI1fthhYUb2ww1I7ZWJxmaMbmuyC_6gGx3N7KZbOuPcY0zPydPRTAlfPNRT8vX9uy8XH9j60-XHi_M1swp0ZrqvrGxUg1LZurVa1kYpK3rkvR0Er-qe62rgoFQLrSzX0fS1so1VqqlqsPKUnO373sTwfcGUu9kli9NkPIYldVKUZQkBdft_lPO2EVKLHfr6AL0OS_TlI4WqdSW5bppCvXqgln7GobuJbjbxtvuTQgHEHrAxpBRx_Itw6HZRd_uouxJ1dx91ty2SPpCsy_cbz9G46XFV7tVU5vgNxn_PfsT6DbXjvaY |
CitedBy_id | crossref_primary_10_1007_s11105_025_01527_z |
Cites_doi | 10.1038/ng.3008 10.3390/agronomy11081579 10.3389/fgene.2021.559998 10.1093/nar/30.1.325 10.1016/j.postharvbio.2017.10.005 10.1093/bioinformatics/btu817 10.1007/s00344-008-9067-2 10.52228/NBW-JAAB.2023-5-1-6 10.19159/tutad.671605 10.1186/s12864-021-07384-w 10.1073/pnas.1109047109 10.1038/nmeth.1226 10.1016/j.gene.2017.11.021 10.1186/s12864-022-09006-5 10.1093/nar/gkl198 10.1093/nar/gkm259 10.1007/s11105-022-01363-5 10.1101/gr.1239303 10.1371/journal.pone.0092598 10.1385/MB:27:1:33 10.1134/S0006297920070019 10.1105/tpc.10.4.599 10.1038/nprot.2015.053 10.1007/s11105-023-01400-x 10.1093/nar/gki442 10.1016/j.scienta.2023.112566 10.1534/genetics.118.301058 10.3109/07388550903330497 10.1006/meth.2001.1262 10.1016/j.tplants.2021.02.011 10.1007/s11738-011-0770-4 10.3389/fgene.2021.647339 10.1016/j.phytochem.2009.08.008 10.1016/j.plaphy.2016.09.016 10.1002/jcc.20084 10.1111/tpj.14500 10.1016/j.molp.2023.09.010 10.1016/j.sajb.2023.07.013 10.1093/nar/gkr201 10.1016/j.phytochem.2007.03.021 10.3389/fpls.2018.00539 10.1007/BF00203588 10.1242/dev.1994.Supplement.125 10.1093/nar/gks1109 10.1093/nar/gkaa1074 10.1093/molbev/msr121 10.1007/s11105-013-0585-0 10.1186/s12864-020-07121-9 10.1042/BST20150217 10.1093/nar/gks1104 10.1186/s12870-020-02664-1 10.1093/nar/gkv487 10.2503/jjshs1.77.329 10.1007/s00239-009-9222-9 10.1104/pp.123.3.1173 10.3389/fmolb.2021.669004 10.1093/nar/gkr1090 |
ContentType | Journal Article |
Copyright | The Author(s), under exclusive licence to Springer-Verlag GmbH Austria, part of Springer Nature 2024 Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law. 2024. The Author(s), under exclusive licence to Springer-Verlag GmbH Austria, part of Springer Nature. Copyright Springer Nature B.V. Mar 2025 |
Copyright_xml | – notice: The Author(s), under exclusive licence to Springer-Verlag GmbH Austria, part of Springer Nature 2024 Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law. – notice: 2024. The Author(s), under exclusive licence to Springer-Verlag GmbH Austria, part of Springer Nature. – notice: Copyright Springer Nature B.V. Mar 2025 |
DBID | AAYXX CITATION CGR CUY CVF ECM EIF NPM K9. NAPCQ 7X8 7S9 L.6 |
DOI | 10.1007/s00709-024-01998-z |
DatabaseName | CrossRef Medline MEDLINE MEDLINE (Ovid) MEDLINE MEDLINE PubMed ProQuest Health & Medical Complete (Alumni) Nursing & Allied Health Premium MEDLINE - Academic AGRICOLA AGRICOLA - Academic |
DatabaseTitle | CrossRef MEDLINE Medline Complete MEDLINE with Full Text PubMed MEDLINE (Ovid) ProQuest Health & Medical Complete (Alumni) Nursing & Allied Health Premium MEDLINE - Academic AGRICOLA AGRICOLA - Academic |
DatabaseTitleList | AGRICOLA MEDLINE - Academic MEDLINE ProQuest Health & Medical Complete (Alumni) |
Database_xml | – sequence: 1 dbid: NPM name: PubMed url: https://proxy.k.utb.cz/login?url=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?db=PubMed sourceTypes: Index Database – sequence: 2 dbid: EIF name: MEDLINE url: https://proxy.k.utb.cz/login?url=https://www.webofscience.com/wos/medline/basic-search sourceTypes: Index Database |
DeliveryMethod | fulltext_linktorsrc |
Discipline | Zoology Biology |
EISSN | 1615-6102 |
EndPage | 383 |
ExternalDocumentID | 39441340 10_1007_s00709_024_01998_z |
Genre | Journal Article |
GroupedDBID | --- -Y2 -~C -~X .86 .GJ .VR 04C 06C 06D 0R~ 0VY 123 199 1N0 1SB 2.D 203 28- 29P 29~ 2J2 2JN 2JY 2KG 2KM 2LR 2P1 2VQ 2~H 30V 3SX 4.4 406 408 409 40D 40E 53G 5QI 5VS 67N 67Z 6NX 78A 7RV 7X7 88E 8AO 8FE 8FH 8FI 8FJ 8TC 8UJ 95- 95. 95~ 96X A8Z AAAVM AABHQ AACDK AAHBH AAHNG AAIAL AAJBT AAJKR AANXM AANZL AAPKM AARHV AARTL AASML AATNV AATVU AAUYE AAWCG AAYIU AAYQN AAYTO AAYZH ABAKF ABBBX ABBRH ABBXA ABDBE ABDZT ABECU ABFSG ABFTV ABHLI ABHQN ABJNI ABJOX ABKCH ABKTR ABMNI ABMQK ABNWP ABPLI ABQBU ABQSL ABRTQ ABSXP ABTEG ABTHY ABTKH ABTMW ABULA ABUWG ABWNU ABXPI ACAOD ACBXY ACDTI ACGFS ACHSB ACHXU ACKNC ACMDZ ACMLO ACNCT ACOKC ACOMO ACPIV ACPRK ACSNA ACSTC ACZOJ ADBBV ADHHG ADHIR ADHKG ADIMF ADKNI ADKPE ADRFC ADTPH ADURQ ADYFF ADYPR ADZKW AEBTG AEFIE AEFQL AEGAL AEGNC AEJHL AEJRE AEKMD AEMSY AENEX AEOHA AEPYU AESKC AETEA AETLH AEVLU AEXYK AEZWR AFBBN AFDZB AFEXP AFFNX AFGCZ AFHIU AFKRA AFLOW AFOHR AFQWF AFWTZ AFZKB AGAYW AGDGC AGGDS AGJBK AGMZJ AGQEE AGQMX AGQPQ AGRTI AGWIL AGWZB AGYKE AHAVH AHBYD AHKAY AHMBA AHPBZ AHSBF AHWEU AHYZX AIAKS AIGIU AIIXL AILAN AITGF AIXLP AJBLW AJRNO AJZVZ AKMHD ALIPV ALMA_UNASSIGNED_HOLDINGS ALWAN AMKLP AMXSW AMYLF AMYQR AOCGG ARMRJ ASPBG ATHPR AVWKF AXYYD AYFIA AZFZN AZQEC B-. BA0 BBNVY BBWZM BDATZ BENPR BGNMA BHPHI BKEYQ BMSDO BPHCQ BSONS BVXVI CAG CCPQU COF CS3 CSCUP DDRTE DL5 DNIVK DPUIP DWQXO EBD EBLON EBS EIHBH EIOEI EJD EMOBN EN4 EPAXT ESBYG EX3 F5P FEDTE FERAY FFXSO FIGPU FINBP FNLPD FRRFC FSGXE FWDCC FYUFA G-Y G-Z GGCAI GGRSB GJIRD GNUQQ GNWQR GQ7 GQ8 GXS H13 HCIFZ HF~ HG5 HG6 HMCUK HMJXF HQYDN HRMNR HVGLF HZ~ I09 IHE IJ- IKXTQ ITM IWAJR IXC IZIGR IZQ I~X I~Z J-C J0Z JBSCW JCJTX JZLTJ KDC KOV KOW KPH LAS LK8 LLZTM M1P M2M M4Y M7P MA- MVM N2Q NAPCQ NB0 NDZJH NPVJJ NQJWS NU0 O9- O93 O9G O9I O9J OAM OHT P19 P2P PF0 PHGZM PHGZT PJZUB PPXIY PQGLB PQQKQ PROAC PSQYO PSYQQ PT4 PT5 QOK QOR QOS R4E R89 R9I RHV RIG RNI RNS ROL RPX RRX RSV RZK S16 S1Z S26 S27 S28 S3A S3B SAP SBL SBY SCLPG SDH SDM SHX SISQX SJYHP SNE SNPRN SNX SOHCF SOJ SPISZ SRMVM SSLCW SSXJD STPWE SV3 SZN T13 T16 TN5 TSG TSK TSV TUC U2A U9L UG4 UKHRP UOJIU UTJUX UZXMN VC2 VFIZW W23 W48 WH7 WJK WK6 WK8 WOW XOL Y6R YLTOR Z45 ZGI ZMTXR ZOVNA ZXP ~02 ~EX ~KM AAYXX CITATION CGR CUY CVF ECM EIF NPM K9. 7X8 7S9 L.6 |
ID | FETCH-LOGICAL-c408t-8b5c3747e34c69c836a44c2be1bcd2156b185d1044909385dfab64c7c447560c3 |
IEDL.DBID | U2A |
ISSN | 0033-183X 1615-6102 |
IngestDate | Fri Jul 11 18:24:09 EDT 2025 Thu Jul 10 17:37:10 EDT 2025 Fri Jul 25 11:00:39 EDT 2025 Mon Jul 21 05:58:08 EDT 2025 Tue Jul 01 05:40:29 EDT 2025 Thu Apr 24 23:04:20 EDT 2025 Mon Jul 21 06:10:05 EDT 2025 |
IsPeerReviewed | true |
IsScholarly | true |
Issue | 2 |
Keywords | GH35 Glycoside hydrolase (GH) QRT-PCR β-galactosidase P. vulgaris |
Language | English |
License | 2024. The Author(s), under exclusive licence to Springer-Verlag GmbH Austria, part of Springer Nature. |
LinkModel | DirectLink |
MergedId | FETCHMERGED-LOGICAL-c408t-8b5c3747e34c69c836a44c2be1bcd2156b185d1044909385dfab64c7c447560c3 |
Notes | ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 14 content type line 23 |
ORCID | 0000-0003-4777-0726 0000-0002-6264-9935 0000-0003-1091-0609 0000-0003-3369-0645 0000-0002-6447-4921 0000-0003-2785-2089 0009-0005-7398-0083 0000-0002-8404-7900 |
PMID | 39441340 |
PQID | 3168531877 |
PQPubID | 1456343 |
PageCount | 19 |
ParticipantIDs | proquest_miscellaneous_3200322069 proquest_miscellaneous_3119723829 proquest_journals_3168531877 pubmed_primary_39441340 crossref_primary_10_1007_s00709_024_01998_z crossref_citationtrail_10_1007_s00709_024_01998_z springer_journals_10_1007_s00709_024_01998_z |
ProviderPackageCode | CITATION AAYXX |
PublicationCentury | 2000 |
PublicationDate | 2025-03-01 |
PublicationDateYYYYMMDD | 2025-03-01 |
PublicationDate_xml | – month: 03 year: 2025 text: 2025-03-01 day: 01 |
PublicationDecade | 2020 |
PublicationPlace | Vienna |
PublicationPlace_xml | – name: Vienna – name: Austria |
PublicationSubtitle | An International Journal of Animal, Fungal and Plant Cell Biology |
PublicationTitle | Protoplasma |
PublicationTitleAbbrev | Protoplasma |
PublicationTitleAlternate | Protoplasma |
PublicationYear | 2025 |
Publisher | Springer Vienna Springer Nature B.V |
Publisher_xml | – name: Springer Vienna – name: Springer Nature B.V |
References | TL Bailey (1998_CR4) 2006; 34 1998_CR24 PW Holland (1998_CR17) 1994; 1994 1998_CR25 I Cvijović (1998_CR8) 2018; 209 QM Imran (1998_CR22) 2021; 11 E İlhan (1998_CR23) 2018; 642 1998_CR29 K Tamura (1998_CR54) 2011; 28 1998_CR62 1998_CR64 J Li (1998_CR34) 2009; 68 1998_CR66 D Gantulga (1998_CR11) 2009; 70 1998_CR65 MS Buckeridge (1998_CR5) 1994; 192 MC Hiz (1998_CR15) 2014; 9 M Moneo-Sánchez (1998_CR39) 2016; 109 LA Kelley (1998_CR26) 2015; 10 J Liu (1998_CR35) 2013; 31 AP Yamniuk (1998_CR61) 2004; 27 YO Ahn (1998_CR2) 2007; 68 A Mortazavi (1998_CR40) 2008; 5 IV Poverennaya (1998_CR45) 2020; 85 B Chandrasekar (1998_CR6) 2016; 44 B Hu (1998_CR20) 2015; 31 1998_CR57 1998_CR56 H Korkmaz (1998_CR28) 2017; 7 1998_CR59 1998_CR16 H Pan (1998_CR43) 2022; 23 1998_CR51 1998_CR50 A Tateishi (1998_CR55) 2008; 77 G Xu (1998_CR60) 2012; 109 1998_CR10 I Lopes (1998_CR37) 2021; 12 F Hou (1998_CR19) 2021; 22 D Restrepo-Montoya (1998_CR48) 2021; 22 S Guo (1998_CR13) 2018; 136 K Dwyer (1998_CR9) 2021; 8 1998_CR41 1998_CR3 1998_CR44 S Saeediazar (1998_CR49) 2014; 5 N Khan (1998_CR27) 2020; 21 Q Husain (1998_CR21) 2010; 30 E Yıldırım (1998_CR63) 2020; 36 E Quevillon (1998_CR46) 2005; 33 D Szklarczyk (1998_CR53) 2021; 49 R Othman (1998_CR42) 2011; 33 J Gregorio Jorge (1998_CR12) 2020; 20 1998_CR36 DL Smith (1998_CR52) 2000; 123 1998_CR30 1998_CR33 1998_CR32 I Martín (1998_CR38) 2009; 28 P Horton (1998_CR18) 2007; 35 A Rakhimzhanova (1998_CR47) 2023; 160 A Heese-Peck (1998_CR14) 1998; 10 Y Wang (1998_CR58) 2015; 43 M Lescot (1998_CR31) 2002; 30 S Adil (1998_CR1) 2023; 5 C Chen (1998_CR7) 2023; 16 |
References_xml | – ident: 1998_CR50 doi: 10.1038/ng.3008 – volume: 5 start-page: 1 year: 2014 ident: 1998_CR49 publication-title: JBES – volume: 11 start-page: 1579 issue: 8 year: 2021 ident: 1998_CR22 publication-title: Agronomy doi: 10.3390/agronomy11081579 – volume: 12 start-page: 559998 year: 2021 ident: 1998_CR37 publication-title: Front Genet doi: 10.3389/fgene.2021.559998 – volume: 30 start-page: 325 year: 2002 ident: 1998_CR31 publication-title: Nucleic Acids Res doi: 10.1093/nar/30.1.325 – volume: 136 start-page: 111 year: 2018 ident: 1998_CR13 publication-title: Postharvest Biol Technol doi: 10.1016/j.postharvbio.2017.10.005 – volume: 31 start-page: 1296 year: 2015 ident: 1998_CR20 publication-title: Bioinformatics doi: 10.1093/bioinformatics/btu817 – volume: 28 start-page: 1 year: 2009 ident: 1998_CR38 publication-title: J Plant Growth Regul doi: 10.1007/s00344-008-9067-2 – volume: 5 start-page: 31 issue: 1 year: 2023 ident: 1998_CR1 publication-title: NewBioWorld doi: 10.52228/NBW-JAAB.2023-5-1-6 – ident: 1998_CR25 doi: 10.19159/tutad.671605 – volume: 22 start-page: 1 issue: 1 year: 2021 ident: 1998_CR48 publication-title: BMC Genomics doi: 10.1186/s12864-021-07384-w – volume: 109 start-page: 1187 issue: 4 year: 2012 ident: 1998_CR60 publication-title: Proc Natl Acad Sci doi: 10.1073/pnas.1109047109 – volume: 5 start-page: 621 year: 2008 ident: 1998_CR40 publication-title: Nat Methods doi: 10.1038/nmeth.1226 – volume: 642 start-page: 64 year: 2018 ident: 1998_CR23 publication-title: Gene doi: 10.1016/j.gene.2017.11.021 – ident: 1998_CR10 – volume: 23 start-page: 795 issue: 1 year: 2022 ident: 1998_CR43 publication-title: BMC Genomics doi: 10.1186/s12864-022-09006-5 – volume: 22 start-page: 1 issue: 1 year: 2021 ident: 1998_CR19 publication-title: BMC Genomics – volume: 34 start-page: W369 year: 2006 ident: 1998_CR4 publication-title: Nucleic Acids Res doi: 10.1093/nar/gkl198 – volume: 35 start-page: 585 year: 2007 ident: 1998_CR18 publication-title: Nucleic Acids Res doi: 10.1093/nar/gkm259 – ident: 1998_CR3 doi: 10.1007/s11105-022-01363-5 – ident: 1998_CR51 doi: 10.1101/gr.1239303 – ident: 1998_CR56 – volume: 9 start-page: e92598 issue: 3 year: 2014 ident: 1998_CR15 publication-title: PloS one doi: 10.1371/journal.pone.0092598 – volume: 27 start-page: 33 year: 2004 ident: 1998_CR61 publication-title: Mol Biotechnol doi: 10.1385/MB:27:1:33 – volume: 85 start-page: 725 year: 2020 ident: 1998_CR45 publication-title: Biochem Mosc doi: 10.1134/S0006297920070019 – volume: 10 start-page: 599 issue: 4 year: 1998 ident: 1998_CR14 publication-title: Plant Cell doi: 10.1105/tpc.10.4.599 – volume: 10 start-page: 845 year: 2015 ident: 1998_CR26 publication-title: Nat Protoc doi: 10.1038/nprot.2015.053 – ident: 1998_CR24 – ident: 1998_CR41 doi: 10.1007/s11105-023-01400-x – volume: 33 start-page: 116 year: 2005 ident: 1998_CR46 publication-title: Nucleic Acids Res doi: 10.1093/nar/gki442 – ident: 1998_CR66 doi: 10.1016/j.scienta.2023.112566 – volume: 209 start-page: 1235 year: 2018 ident: 1998_CR8 publication-title: Genetics doi: 10.1534/genetics.118.301058 – volume: 30 start-page: 41 issue: 1 year: 2010 ident: 1998_CR21 publication-title: Crit Rev Biotechnol doi: 10.3109/07388550903330497 – ident: 1998_CR36 doi: 10.1006/meth.2001.1262 – ident: 1998_CR65 doi: 10.1016/j.tplants.2021.02.011 – volume: 33 start-page: 2301 year: 2011 ident: 1998_CR42 publication-title: Acta Physiol Plant doi: 10.1007/s11738-011-0770-4 – ident: 1998_CR64 doi: 10.3389/fgene.2021.647339 – volume: 70 start-page: 1999 issue: 17–18 year: 2009 ident: 1998_CR11 publication-title: Phytochemistry doi: 10.1016/j.phytochem.2009.08.008 – volume: 109 start-page: 137 year: 2016 ident: 1998_CR39 publication-title: Plant Physiol Biochem doi: 10.1016/j.plaphy.2016.09.016 – ident: 1998_CR44 doi: 10.1002/jcc.20084 – ident: 1998_CR57 doi: 10.1111/tpj.14500 – volume: 16 start-page: 1733 year: 2023 ident: 1998_CR7 publication-title: Mol Plant doi: 10.1016/j.molp.2023.09.010 – volume: 160 start-page: 282 year: 2023 ident: 1998_CR47 publication-title: South African Journal of Botany doi: 10.1016/j.sajb.2023.07.013 – ident: 1998_CR32 doi: 10.1093/nar/gkr201 – volume: 68 start-page: 1510 year: 2007 ident: 1998_CR2 publication-title: Phytochemistry doi: 10.1016/j.phytochem.2007.03.021 – ident: 1998_CR62 doi: 10.3389/fpls.2018.00539 – volume: 192 start-page: 502 year: 1994 ident: 1998_CR5 publication-title: Planta doi: 10.1007/BF00203588 – volume: 1994 start-page: 125 issue: Supplement year: 1994 ident: 1998_CR17 publication-title: Development doi: 10.1242/dev.1994.Supplement.125 – ident: 1998_CR59 doi: 10.1093/nar/gks1109 – volume: 49 start-page: D605 issue: D1 year: 2021 ident: 1998_CR53 publication-title: Nucleic Acids Res doi: 10.1093/nar/gkaa1074 – volume: 28 start-page: 2731 year: 2011 ident: 1998_CR54 publication-title: Mol Biol Evol doi: 10.1093/molbev/msr121 – volume: 31 start-page: 1249 year: 2013 ident: 1998_CR35 publication-title: Plant Mol Biol Report doi: 10.1007/s11105-013-0585-0 – volume: 21 start-page: 1 year: 2020 ident: 1998_CR27 publication-title: BMC Genomics doi: 10.1186/s12864-020-07121-9 – ident: 1998_CR33 – ident: 1998_CR16 – volume: 44 start-page: 150 issue: 1 year: 2016 ident: 1998_CR6 publication-title: Biochem Soc Trans doi: 10.1042/BST20150217 – ident: 1998_CR30 doi: 10.1093/nar/gks1104 – volume: 20 start-page: 525 issue: 1 year: 2020 ident: 1998_CR12 publication-title: BMC Plant Biol doi: 10.1186/s12870-020-02664-1 – volume: 43 start-page: W78 issue: W1 year: 2015 ident: 1998_CR58 publication-title: Nucleic Acids Res doi: 10.1093/nar/gkv487 – volume: 36 start-page: 264 issue: 2 year: 2020 ident: 1998_CR63 publication-title: Erciyes Univ Grad School Natl Appl Sci J Sci – volume: 77 start-page: 329 issue: 4 year: 2008 ident: 1998_CR55 publication-title: J Japanese Soc Horticultural Sci doi: 10.2503/jjshs1.77.329 – volume: 68 start-page: 414 year: 2009 ident: 1998_CR34 publication-title: J Mol Evol doi: 10.1007/s00239-009-9222-9 – volume: 123 start-page: 1173 issue: 3 year: 2000 ident: 1998_CR52 publication-title: Plant Physiol doi: 10.1104/pp.123.3.1173 – volume: 7 start-page: 192 issue: 2 year: 2017 ident: 1998_CR28 publication-title: J Gumushane Univ Instit Sci Technol – volume: 8 start-page: 669004 year: 2021 ident: 1998_CR9 publication-title: Front Mol Biosci doi: 10.3389/fmolb.2021.669004 – ident: 1998_CR29 doi: 10.1093/nar/gkr1090 |
SSID | ssj0005205 |
Score | 2.4027667 |
Snippet | Β
-Gal
s are a subgroup of the glycoside hydrolase (GH) family of enzymes, which possess the Glyco_hydro_35 (GH35) domain. Although studies have been conducted... Β-Gals are a subgroup of the glycoside hydrolase (GH) family of enzymes, which possess the Glyco_hydro_35 (GH35) domain. Although studies have been conducted... |
SourceID | proquest pubmed crossref springer |
SourceType | Aggregation Database Index Database Enrichment Source Publisher |
StartPage | 365 |
SubjectTerms | Abiotic stress Amino acids Arabidopsis thaliana Beans beta-Galactosidase - genetics beta-Galactosidase - metabolism Bioinformatics Biomedical and Life Sciences Cell Biology computer simulation domain Drought Droughts family Gene expression Gene Expression Regulation, Plant Genes Genome, Plant Genomes Genomic analysis Genomics Glycine max Glycoside hydrolase Glycosides hydrolases Isoelectric points leaves Life Sciences Multigene Family Original Article Phaseolus - enzymology Phaseolus - genetics Phylogeny Plant Proteins - genetics Plant Proteins - metabolism Plant Sciences Polymerase chain reaction quantitative polymerase chain reaction salt stress species stress response Stress, Physiological - genetics Synteny water stress Zoology |
Title | Predicting the role of β-GAL genes in bean under abiotic stress and genome-wide characterization of β-GAL gene family members |
URI | https://link.springer.com/article/10.1007/s00709-024-01998-z https://www.ncbi.nlm.nih.gov/pubmed/39441340 https://www.proquest.com/docview/3168531877 https://www.proquest.com/docview/3119723829 https://www.proquest.com/docview/3200322069 |
Volume | 262 |
hasFullText | 1 |
inHoldings | 1 |
isFullTextHit | |
isPrint | |
link | http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwlV3dS9xAEB-sUuiLWO3HVStb8K1dSLKbveTxED9QW_rgwbUvYb9SDmoidyelvvR_8g_xb3Imm0SrVejbQibDktmdj8z8ZgB2pEKzEnnDtaA0o8sibhKjeay0ypSL89zRr4HPX9ThWB5N0kkLCpt31e5dSrLR1D3YjTrT5BxtCoa_BAy7fAYrKcbuVMg1TkZ3CzvC3AIhOB7YSQuV-TePv83RAx_zQX60MTv7a7Da-otsFAT8EpZ8tQ7PwwTJ37j6XjerDfjzdUY5F6piZujUMSobZHXJrq_4weiE_SCdxqYVM15XjJBjM6bNtEa2LOBFmK4ckdVnnv-aOs9s38s5QDXvcWPh3wg78zRTZP4Kxvt7p7uHvJ2uwK2MsgXPTGoFBhNeSKtymwmlpbSJ8bGxDh0BZdCUO4zWZB7lApelNkraoaUWgSqy4jUsV3Xl3wJLkUeJjp1UBhVCqbUzkc6HTlqXpkaWA4i7j1zYtvU4TcD4WfRNkxvBFCiYohFMcTmAj_0756HxxpPUW53sivYSzguayYUqJhsOB_Chf4zXh3IiuvL1BdGEuWtJ_gQNFfAlSaSQ5k04F_2WCFccCxkN4FN3UG438Ph-3_0f-Sa8SGjucFP7tgXLi9mFf4_O0MJsw8ro4Nvx3nZzB24ANusBgw |
linkProvider | Springer Nature |
linkToHtml | http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwtR3LbtNAcFSKEL0g3gQKLBKcYCV7vd7YBw4RUFKaVhwaKeJi9mUUidpVkqpqL_wMX8CH8E3MeG3zKFTi0NtKHo9Gnp2X5wXwVCo0K5E3XCeUZnRZxI0wmsdKq0y5OM8d_RrY3VPjqXw3S2dr8LXrhWmq3buUZKOp-2Y3mkyTc7QpGP5SY9hpW0q540-OMVBbvtx-jVx9JsTWm_1XY97uEuBWRtmKZya1CbrOPpFW5TZLlJbSCuNjYx2aPWXQcDmMTWSOMT4eS22UtENLA_FUZBPEewkuo_ORkexMxejXQpKwJyFJOArIrG3N-TvNv5u_Mz7tmXxsY-a2rsO11j9lo3ChbsCar27ClbCx8gRPH-rmdAu-vF9Qjoeqphk6kYzKFFldsu_f-NvRhH0iHcrmFTNeV4w61RZMm3mNaFnoT2G6cgRWH3h-PHee2X52dGgN_QMbC_9i2IGnHSbL2zC9EA7cgfWqrvw9YCniKNGRlMqgAiq1dibS-dBJ69LUyHIAcfeRC9uOOqeNG5-Lfkhzw5gCGVM0jClOB_C8f-cwDPo4F3qz413RCv2yoB1gqNKy4XAAT_rHKK6Ug9GVr48IJux5E_k5MFQwKESkEOZuuBc9SdTHHCcyGsCL7qL8JODf9N7_P_DHcHW8vzspJtt7Ow9gQ9DO46bubhPWV4sj_xAdsZV51MgBg48XLXg_AF6zO5w |
linkToPdf | http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwtV1Lb9QwEB6VIhAXxLMsFDASnMBq4jje5MBhRVlaWqoeWGnFJfgVtBJNqt2tqvbCX0L8EH4TM3ESHoVKHHqzlMnIyngezsw3A_BUKnQrkTdcJ5RmdFnEjTCax0qrTLk4zx39Gni3p7Ym8u00na7A1w4L01S7dynJgGmgLk3VcuPQlRs98I261OQc_QtehQkkdtqWVe74k2O8tC1ebm-ihJ8JMX79_tUWb-cKcCujbMkzk9oEw2ifSKtymyVKS2mF8bGxDl2gMujEHN5TZI73fVyW2ihph5aa46nIJsj3ElyWhD5GDZqI0a9FJWFmQpJwVJZpC9P5-55_d4Vn4tszudnG5Y1vwPU2VmWjcLhuwoqvbsGVML3yBFcf6mZ1G77szynfQxXUDANKRiWLrC7Z92_8zWiXfSJ7ymYVM15XjFBrc6bNrEa2LGBVmK4ckdUHnh_PnGe27yMdYKJ_cGPhvww78DTPZHEHJhcigbuwWtWVvwcsRR4lBpVSGTRGpdbORDofOmldmhpZDiDuPnJh27bnNH3jc9E3bG4EU6BgikYwxekAnvfvHIamH-dSr3eyK1oDsChoHhiat2w4HMCT_jGqLuVjdOXrI6IJM99Efg4NFQ8KESmkWQvnot8SYZrjREYDeNEdlJ8b-Pd-7_8f-WO4ur85Lna393YewDVB44-bErx1WF3Oj_xDjMmW5lGjBgw-XrTe_QCQdD_P |
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=Predicting+the+role+of+%CE%B2-GAL+genes+in+bean+under+abiotic+stress+and+genome-wide+characterization+of+%CE%B2-GAL+gene+family+members&rft.jtitle=Protoplasma&rft.au=Buttanri%2C+Azize&rft.au=Kasapo%C4%9Flu%2C+Ay%C5%9Fe+G%C3%BCl&rft.au=%C3%96ner%2C+Burak+Muhammed&rft.au=Ayg%C3%B6ren%2C+Ahmed+Sidar&rft.date=2025-03-01&rft.issn=0033-183X&rft.eissn=1615-6102&rft.volume=262&rft.issue=2&rft.spage=365&rft.epage=383&rft_id=info:doi/10.1007%2Fs00709-024-01998-z&rft.externalDBID=n%2Fa&rft.externalDocID=10_1007_s00709_024_01998_z |
thumbnail_l | http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=0033-183X&client=summon |
thumbnail_m | http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=0033-183X&client=summon |
thumbnail_s | http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=0033-183X&client=summon |