Search Results
Overview
| Uniprot ID | P23378 |
|---|---|
| Protein Name | Glycine dehydrogenase (decarboxylating), mitochondrial |
| Gene Name | GLDC |
| Organism | Homo sapiens |
Kla Sites from experimental identification
| Position | Flanking peptide |
|---|---|
| 106 | IRLKRPLKMEDPVCE |
| 238 | AVVQTRAKYTGVLTE |
| 358 | VTRDATGKEVYRLAL |
| 376 | EQHIRRDKATSNICT |
| 423 | LILSEGLKRAGHQLQ |
| 447 | IQCGCSVKEVLGRAA |
| 636 | IRAYLNQKGEGHRTV |
| 648 | RTVCLIPKSAHGTNP |
| 664 | SAHMAGMKIQPVEVD |
| 672 | IQPVEVDKYGNIDAV |
| 73 | RHIGPGDKDQREMLQ |
| 773 | GMGPIGVKKHLAPFL |
| 774 | MGPIGVKKHLAPFLP |
| 789 | NHPVISLKRNEDACP |
| 872 | LDTRPFKKSANIEAV |
| 883 | IEAVDVAKRLQDYGF |
Function
The glycine cleavage system catalyzes the degradation of glycine. The P protein (GLDC) binds the alpha-amino group of glycine through its pyridoxal phosphate cofactor; CO(2) is released and the remaining methylamine moiety is then transferred to the lipoamide cofactor of the H protein (GCSH)
Protein Sequence
10
MQSCARAWGL
20
RLGRGVGGGR
30
RLAGGSGPCW
40
APRSRDSSSG
50
GGDSAAAGAS
60
RLLERLLPRH
70
DDFARRHIGP
80
GDKDQREMLQ
90
TLGLASIDEL
100
IEKTVPANIR
110
LKRPLKMEDP
120
VCENEILATL
130
HAISSKNQIW
140
RSYIGMGYYN
150
CSVPQTILRN
160
LLENSGWITQ
170
YTPYQPEVSQ
180
GRLESLLNYQ
190
TMVCDITGLD
200
MANASLLDEG
210
TAAAEALQLC
220
YRHNKRRKFL
230
VDPRCHPQTI
240
AVVQTRAKYT
250
GVLTELKLPC
260
EMDFSGKDVS
270
GVLFQYPDTE
280
GKVEDFTELV
290
ERAHQSGSLA
300
CCATDLLALC
310
ILRPPGEFGV
320
DIALGSSQRF
330
GVPLGYGGPH
340
AAFFAVRESL
350
VRMMPGRMVG
360
VTRDATGKEV
370
YRLALQTREQ
380
HIRRDKATSN
390
ICTAQALLAN
400
MAAMFAIYHG
410
SHGLEHIARR
420
VHNATLILSE
430
GLKRAGHQLQ
440
HDLFFDTLKI
450
QCGCSVKEVL
460
GRAAQRQINF
470
RLFEDGTLGI
480
SLDETVNEKD
490
LDDLLWIFGC
500
ESSAELVAES
510
MGEECRGIPG
520
SVFKRTSPFL
530
THQVFNSYHS
540
ETNIVRYMKK
550
LENKDISLVH
560
SMIPLGSCTM
570
KLNSSSELAP
580
ITWKEFANIH
590
PFVPLDQAQG
600
YQQLFRELEK
610
DLCELTGYDQ
620
VCFQPNSGAQ
630
GEYAGLATIR
640
AYLNQKGEGH
650
RTVCLIPKSA
660
HGTNPASAHM
670
AGMKIQPVEV
680
DKYGNIDAVH
690
LKAMVDKHKE
700
NLAAIMITYP
710
STNGVFEENI
720
SDVCDLIHQH
730
GGQVYLDGAN
740
MNAQVGICRP
750
GDFGSDVSHL
760
NLHKTFCIPH
770
GGGGPGMGPI
780
GVKKHLAPFL
790
PNHPVISLKR
800
NEDACPVGTV
810
SAAPWGSSSI
820
LPISWAYIKM
830
MGGKGLKQAT
840
ETAILNANYM
850
AKRLETHYRI
860
LFRGARGYVG
870
HEFILDTRPF
880
KKSANIEAVD
890
VAKRLQDYGF
900
HAPTMSWPVA
910
GTLMVEPTES
920
EDKAELDRFC
930
DAMISIRQEI
940
ADIEEGRIDP
950
RVNPLKMSPH
960
SLTCVTSSHW
970
DRPYSREVAA
980
FPLPFVKPEN
990
KFWPTIARID
1000
DIYGDQHLVC
1010
TCPPMEVYES
1020
PFSEQKRASS
Gene Ontology
| Classification | GO ID | Description |
|---|---|---|
| Cellular Component | GO:0005960 | glycine cleavage complex |
| Cellular Component | GO:0005759 | mitochondrial matrix |
| Cellular Component | GO:0005739 | mitochondrion |
| Molecular Function | GO:0009055 | electron transfer activity |
| Molecular Function | GO:0016594 | glycine binding |
| Molecular Function | GO:0004375 | glycine dehydrogenase (decarboxylating) activity |
| Molecular Function | GO:0016829 | lyase activity |
| Molecular Function | GO:0042803 | protein homodimerization activity |
| Molecular Function | GO:0070280 | pyridoxal binding |
| Molecular Function | GO:0030170 | pyridoxal phosphate binding |
| Biological Process | GO:0006546 | glycine catabolic process |
| Biological Process | GO:0019464 | glycine decarboxylation via glycine cleavage system |
| Biological Process | GO:1903442 | response to lipoic acid |
| Biological Process | GO:0036255 | response to methylamine |
Reference
[1] Yang Z, Yan C, Ma J, Peng P, Ren X et al.. Lactylome analysis suggests lactylation-dependent mechanisms of metabolic adaptation in hepatocellular carcinoma.. Nat Metab 5(1):61-79. 2023 Jan. PMID: 36593272.
[2] Hong H, Chen X, Wang H, Gu X, Yuan Y et al.. Global profiling of protein lysine lactylation and potential target modified protein analysis in hepatocellular carcinoma.. Proteomics 23(9):e2200432. 2023 May. PMID: 36625413.