General Information of Drug Transporter (DT)
DT ID DTD0202 Transporter Info
Gene Name SLC25A4
Transporter Name Adenine nucleotide translocator 1
Gene ID
291
UniProt ID
P12235
Post-Translational Modification of This DT
Overview of SLC25A4 Modification Sites with Functional and Structural Information
Sequence
PTM type
X-Acetylation X-Malonylation X-Methylation X-Oxidation X-Phosphorylation X-S-nitrosylation X-S-sulfhydration X-Succinylation X-Sulfoxidation X-Ubiquitination X: Amino Acid

Acetylation

  Lysine

        15 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [1]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

10

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 10 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [2] , [3]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

23

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 23 has the potential to affect its expression or activity.

  PTM Phenomenon 3

Have the potential to influence SLC25A4 [4]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

33

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 33 has the potential to affect its expression or activity.

  PTM Phenomenon 4

Have the potential to influence SLC25A4 [5]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

43

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 43 has the potential to affect its expression or activity.

  PTM Phenomenon 5

Have the potential to influence SLC25A4 [6]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

52

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 52 has the potential to affect its expression or activity.

  PTM Phenomenon 6

Have the potential to influence SLC25A4 [7]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

92

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 92 has the potential to affect its expression or activity.

  PTM Phenomenon 7

Have the potential to influence SLC25A4 [8]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

94

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 94 has the potential to affect its expression or activity.

  PTM Phenomenon 8

Have the potential to influence SLC25A4 [2] , [9]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

96

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 96 has the potential to affect its expression or activity.

  PTM Phenomenon 9

Have the potential to influence SLC25A4 [3]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

147

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 147 has the potential to affect its expression or activity.

  PTM Phenomenon 10

Have the potential to influence SLC25A4 [2] , [5]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

163

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 163 has the potential to affect its expression or activity.

  PTM Phenomenon 11

Have the potential to influence SLC25A4 [2]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

166

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 166 has the potential to affect its expression or activity.

  PTM Phenomenon 12

Have the potential to influence SLC25A4 [2] , [3]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

199

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 199 has the potential to affect its expression or activity.

  PTM Phenomenon 13

Have the potential to influence SLC25A4 [3]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

268

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 268 has the potential to affect its expression or activity.

  PTM Phenomenon 14

Have the potential to influence SLC25A4 [10] , [11]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

272

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 272 has the potential to affect its expression or activity.

  PTM Phenomenon 15

Have the potential to influence SLC25A4 [12]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

295

Experimental Method

Co-Immunoprecipitation

Detailed Description

Acetylation at SLC25A4 Lysine 295 has the potential to affect its expression or activity.

Malonylation

  Lysine

          2 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [13]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

96

Experimental Method

Co-Immunoprecipitation

Detailed Description

Malonylation at SLC25A4 Lysine 96 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [13]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

199

Experimental Method

Co-Immunoprecipitation

Detailed Description

Malonylation at SLC25A4 Lysine 199 has the potential to affect its expression or activity.

Methylation

  Lysine

          2 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [14]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

147

Experimental Method

Co-Immunoprecipitation

Detailed Description

Methylation at SLC25A4 Lysine 147 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [10] , [11]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

272

Experimental Method

Co-Immunoprecipitation

Detailed Description

Methylation at SLC25A4 Lysine 272 has the potential to affect its expression or activity.

Oxidation

  Cystine

          3 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [15] , [16]

Role of PTM

Potential impacts

Modified Residue

Cystine

Modified Location

57

Experimental Method

Co-Immunoprecipitation

Detailed Description

Oxidation at SLC25A4 Cystine 57 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [15] , [16]

Role of PTM

Potential impacts

Modified Residue

Cystine

Modified Location

129

Experimental Method

Co-Immunoprecipitation

Detailed Description

Oxidation at SLC25A4 Cystine 129 has the potential to affect its expression or activity.

  PTM Phenomenon 3

Have the potential to influence SLC25A4 [16] , [17]

Role of PTM

Potential impacts

Modified Residue

Cystine

Modified Location

257

Experimental Method

Co-Immunoprecipitation

Detailed Description

Oxidation at SLC25A4 Cystine 257 has the potential to affect its expression or activity.

Phosphorylation

  Serine

          9 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [18] , [19]

Role of PTM

Potential impacts

Modified Residue

Serine

Modified Location

7

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Serine 7 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [20] , [21]

Role of PTM

Potential impacts

Modified Residue

Serine

Modified Location

22

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Serine 22 has the potential to affect its expression or activity.

  PTM Phenomenon 3

Have the potential to influence SLC25A4 [22] , [23]

Role of PTM

Potential impacts

Modified Residue

Serine

Modified Location

42

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Serine 42 has the potential to affect its expression or activity.

  PTM Phenomenon 4

Have the potential to influence SLC25A4 [20]

Role of PTM

Potential impacts

Modified Residue

Serine

Modified Location

46

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Serine 46 has the potential to affect its expression or activity.

  PTM Phenomenon 5

Have the potential to influence SLC25A4 [24] , [25]

Role of PTM

Potential impacts

Modified Residue

Serine

Modified Location

119

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Serine 119 has the potential to affect its expression or activity.

  PTM Phenomenon 6

Have the potential to influence SLC25A4 [26] , [27]

Role of PTM

Potential impacts

Modified Residue

Serine

Modified Location

127

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Serine 127 has the potential to affect its expression or activity.

  PTM Phenomenon 7

Have the potential to influence SLC25A4 [25]

Role of PTM

Potential impacts

Modified Residue

Serine

Modified Location

167

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Serine 167 has the potential to affect its expression or activity.

  PTM Phenomenon 8

Have the potential to influence SLC25A4 [18]

Role of PTM

Potential impacts

Modified Residue

Serine

Modified Location

242

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Serine 242 has the potential to affect its expression or activity.

  PTM Phenomenon 9

Have the potential to influence SLC25A4 [26] , [28]

Role of PTM

Potential impacts

Modified Residue

Serine

Modified Location

276

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Serine 276 has the potential to affect its expression or activity.

  Threonine

          5 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [29] , [30]

Role of PTM

Potential impacts

Modified Residue

Threonine

Modified Location

24

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Threonine 24 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [26] , [31]

Role of PTM

Potential impacts

Modified Residue

Threonine

Modified Location

84

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Threonine 84 has the potential to affect its expression or activity.

  PTM Phenomenon 3

Have the potential to influence SLC25A4 [26] , [27]

Role of PTM

Potential impacts

Modified Residue

Threonine

Modified Location

126

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Threonine 126 has the potential to affect its expression or activity.

  PTM Phenomenon 4

Have the potential to influence SLC25A4 [29]

Role of PTM

Potential impacts

Modified Residue

Threonine

Modified Location

139

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Threonine 139 has the potential to affect its expression or activity.

  PTM Phenomenon 5

Have the potential to influence SLC25A4 [26] , [32]

Role of PTM

Potential impacts

Modified Residue

Threonine

Modified Location

197

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Threonine 197 has the potential to affect its expression or activity.

  Tyrosine

          4 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [26] , [33]

Role of PTM

Potential impacts

Modified Residue

Tyrosine

Modified Location

81

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Tyrosine 81 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [26] , [34]

Role of PTM

Potential impacts

Modified Residue

Tyrosine

Modified Location

112

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Tyrosine 112 has the potential to affect its expression or activity.

  PTM Phenomenon 3

Have the potential to influence SLC25A4 [26] , [35]

Role of PTM

Potential impacts

Modified Residue

Tyrosine

Modified Location

191

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Tyrosine 191 has the potential to affect its expression or activity.

  PTM Phenomenon 4

Have the potential to influence SLC25A4 [26] , [36]

Role of PTM

Potential impacts

Modified Residue

Tyrosine

Modified Location

195

Experimental Method

Co-Immunoprecipitation

Detailed Description

Phosphorylation at SLC25A4 Tyrosine 195 has the potential to affect its expression or activity.

S-nitrosylation

  Cysteine

          1 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [37]

Role of PTM

Potential impacts

Modified Residue

Cysteine

Experimental Method

Co-Immunoprecipitation

Detailed Description

S-nitrosylation at SLC25A4 Cysteine has the potential to affect its expression or activity.

  Cystine

          3 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [37] , [38]

Role of PTM

Potential impacts

Modified Residue

Cystine

Modified Location

129

Experimental Method

Co-Immunoprecipitation

Detailed Description

S-nitrosylation (-SNO) at SLC25A4 Cystine 129 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [39]

Role of PTM

Potential impacts

Modified Residue

Cystine

Modified Location

160

Experimental Method

Co-Immunoprecipitation

Detailed Description

S-nitrosylation (-SNO) at SLC25A4 Cystine 160 has the potential to affect its expression or activity.

  PTM Phenomenon 3

Have the potential to influence SLC25A4 [37] , [38]

Role of PTM

Potential impacts

Modified Residue

Cystine

Modified Location

257

Experimental Method

Co-Immunoprecipitation

Detailed Description

S-nitrosylation (-SNO) at SLC25A4 Cystine 257 has the potential to affect its expression or activity.

S-sulfhydration

  Cystine

          2 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [40]

Role of PTM

Potential impacts

Modified Residue

Cystine

Modified Location

57

Experimental Method

Co-Immunoprecipitation

Detailed Description

S-sulfhydration (-SSH) at SLC25A4 Cystine 57 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [41]

Role of PTM

Potential impacts

Modified Residue

Cystine

Modified Location

257

Experimental Method

Co-Immunoprecipitation

Detailed Description

S-sulfhydration (-SSH) at SLC25A4 Cystine 257 has the potential to affect its expression or activity.

Succinylation

  Lysine

          4 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [3]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

23

Experimental Method

Co-Immunoprecipitation

Detailed Description

Succinylation at SLC25A4 Lysine 23 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [3]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

147

Experimental Method

Co-Immunoprecipitation

Detailed Description

Succinylation at SLC25A4 Lysine 147 has the potential to affect its expression or activity.

  PTM Phenomenon 3

Have the potential to influence SLC25A4 [42] , [43]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

245

Experimental Method

Co-Immunoprecipitation

Detailed Description

Succinylation at SLC25A4 Lysine 245 has the potential to affect its expression or activity.

  PTM Phenomenon 4

Have the potential to influence SLC25A4 [42] , [43]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

272

Experimental Method

Co-Immunoprecipitation

Detailed Description

Succinylation at SLC25A4 Lysine 272 has the potential to affect its expression or activity.

Sulfoxidation

  Methionine

          2 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [44]

Role of PTM

Potential impacts

Modified Residue

Methionine

Modified Location

201

Experimental Method

Co-Immunoprecipitation

Detailed Description

Sulfoxidation at SLC25A4 Methionine 201 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [44]

Role of PTM

Potential impacts

Modified Residue

Methionine

Modified Location

282

Experimental Method

Co-Immunoprecipitation

Detailed Description

Sulfoxidation at SLC25A4 Methionine 282 has the potential to affect its expression or activity.

Ubiquitination

  Lysine

          8 PTM Phenomena Related to This Residue Click to Show/Hide the Full List

  PTM Phenomenon 1

Have the potential to influence SLC25A4 [42] , [43]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

33

Experimental Method

Co-Immunoprecipitation

Detailed Description

Ubiquitination at SLC25A4 Lysine 33 has the potential to affect its expression or activity.

  PTM Phenomenon 2

Have the potential to influence SLC25A4 [42]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

43

Experimental Method

Co-Immunoprecipitation

Detailed Description

Ubiquitination at SLC25A4 Lysine 43 has the potential to affect its expression or activity.

  PTM Phenomenon 3

Have the potential to influence SLC25A4 [42] , [43]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

63

Experimental Method

Co-Immunoprecipitation

Detailed Description

Ubiquitination at SLC25A4 Lysine 63 has the potential to affect its expression or activity.

  PTM Phenomenon 4

Have the potential to influence SLC25A4 [42] , [43]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

92

Experimental Method

Co-Immunoprecipitation

Detailed Description

Ubiquitination at SLC25A4 Lysine 92 has the potential to affect its expression or activity.

  PTM Phenomenon 5

Have the potential to influence SLC25A4 [10] , [42]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

96

Experimental Method

Co-Immunoprecipitation

Detailed Description

Ubiquitination at SLC25A4 Lysine 96 has the potential to affect its expression or activity.

  PTM Phenomenon 6

Have the potential to influence SLC25A4 [42]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

199

Experimental Method

Co-Immunoprecipitation

Detailed Description

Ubiquitination at SLC25A4 Lysine 199 has the potential to affect its expression or activity.

  PTM Phenomenon 7

Have the potential to influence SLC25A4 [42]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

245

Experimental Method

Co-Immunoprecipitation

Detailed Description

Ubiquitination at SLC25A4 Lysine 245 has the potential to affect its expression or activity.

  PTM Phenomenon 8

Have the potential to influence SLC25A4 [10]

Role of PTM

Potential impacts

Modified Residue

Lysine

Modified Location

272

Experimental Method

Co-Immunoprecipitation

Detailed Description

Ubiquitination at SLC25A4 Lysine 272 has the potential to affect its expression or activity.
References
1 Incidence and reasons for late failure after allogeneic haematopoietic cell transplantation following BuCy2 in acute myeloid leukaemia. Br J Haematol. 2010 Feb;148(4):623-6.
2 Quantitative Proteomic Atlas of Ubiquitination and Acetylation in the DNA Damage Response. Mol Cell. 2015 Sep 3;59(5):867-81.
3 Lysine Acetylation and Succinylation in HeLa Cells and their Essential Roles in Response to UV-induced Stress. Sci Rep. 2016 Jul 25;6:30212.
4 Primary chemotherapy to avoid mastectomy in tumors with diameters of three centimeters or more. J Natl Cancer Inst. 1990 Oct 3;82(19):1539-45.
5 Deep, Quantitative Coverage of the Lysine Acetylome Using Novel Anti-acetyl-lysine Antibodies and an Optimized Proteomic Workflow. Mol Cell Proteomics. 2015 Sep;14(9):2429-40.
6 Insights into the inhibitory mechanism of a resveratrol and clioquinol hybrid against Abeta42 aggregation and protofibril destabilization: A molecular dynamics simulation study. J Biomol Struct Dyn. 2019 Aug;37(12):3183-3197.
7 Close association between Fc receptor and HLA-D-associated (Ia-like) determinants on human lymphoid cells. Transplant Proc. 1977 Mar;9(1):1219-21.
8 Geographical variation in the major compounds of Aloe ferox leaf exudate. Planta Med. 1995 Jun;61(3):250-3.
9 Lysine succinylation is a frequently occurring modification in prokaryotes and eukaryotes and extensively overlaps with acetylation. Cell Rep. 2013 Aug 29;4(4):842-51.
10 Lysine acetylation targets protein complexes and co-regulates major cellular functions. Science. 2009 Aug 14;325(5942):834-40.
11 HLA-D-locus determinants detected by sperm-lymphocyte culture. Transplant Proc. 1977 Mar;9(1):1239-41.
12 Advancing Research on LGBTQ Microaggressions: A Psychometric Scoping Review of Measures. J Homosex. 2019;66(10):1345-1379.
13 Proteomic and Biochemical Studies of Lysine Malonylation Suggest Its Malonic Aciduria-associated Regulatory Role in Mitochondrial Function and Fatty Acid Oxidation. Mol Cell Proteomics. 2015 Nov;14(11):3056-71.
14 Muscle fibre types in the human vastus lateralis muscles: do symmetrical sites differ in their composition?. Anat Anz. 1990;171(1):55-63.
15 A Quantitative Tissue-Specific Landscape of Protein Redox Regulation during Aging. Cell. 2020 Mar 5;180(5):968-983.e24.
16 Identifying Functional Cysteine Residues in the Mitochondria. ACS Chem Biol. 2017 Apr 21;12(4):947-957.
17 Molecular Signature of Nitroso-Redox Balance in Idiopathic Dilated Cardiomyopathies. J Am Heart Assoc. 2015 Sep 22;4(9):e002251.
18 Ischemia in tumors induces early and sustained phosphorylation changes in stress kinase pathways but does not affect global protein levels. Mol Cell Proteomics. 2014 Jul;13(7):1690-704.
19 Quantitative maps of protein phosphorylation sites across 14 different rat organs and tissues. Nat Commun. 2012 Jun 6;3:876.
20 Global Phosphoproteomic Analysis of Human Skeletal Muscle Reveals a Network of Exercise-Regulated Kinases and AMPK Substrates. Cell Metab. 2015 Nov 3;22(5):922-35.
21 Insulin increases phosphorylation of mitochondrial proteins in human skeletal muscle in vivo. J Proteome Res. 2014 May 2;13(5):2359-69.
22 Global phosphoproteomic analysis reveals ARMC10 as an AMPK substrate that regulates mitochondrial dynamics. Nat Commun. 2019 Jan 10;10(1):104.
23 Phosphoproteomic screening identifies physiological substrates of the CDKL5 kinase. EMBO J. 2018 Dec 14;37(24):e99559.
24 Residual tissue repositories as a resource for population-based cancer proteomic studies. Clin Proteomics. 2018 Aug 3;15:26.
25 Phosphoproteome analysis of functional mitochondria isolated from resting human muscle reveals extensive phosphorylation of inner membrane protein complexes and enzymes. Mol Cell Proteomics. 2011 Jan;10(1):M110.000299.
26 Identification of Missing Proteins in the Phosphoproteome of Kidney Cancer. J Proteome Res. 2017 Dec 1;16(12):4364-4373.
27 Phosphoproteome resource for systems biology research. Methods Mol Biol. 2011;694:307-22.
28 Tip-Based Fractionation of Batch-Enriched Phosphopeptides Facilitates Easy and Robust Phosphoproteome Analysis. J Proteome Res. 2018 Jan 5;17(1):46-54.
29 The Plk1-dependent phosphoproteome of the early mitotic spindle. Mol Cell Proteomics. 2011 Jan;10(1):M110.004457.
30 Quantitative phosphoproteomics identifies substrates and functional modules of Aurora and Polo-like kinase activities in mitotic cells. Sci Signal. 2011 Jun 28;4(179):rs5.
31 A Methodological Assessment and Characterization of Genetically-Driven Variation in Three Human Phosphoproteomes. Sci Rep. 2018 Aug 14;8(1):12106.
32 Global phosphotyrosine survey in triple-negative breast cancer reveals activation of multiple tyrosine kinase signaling pathways. Oncotarget. 2015 Oct 6;6(30):29143-60.
33 Integrated mapping of pharmacokinetics and pharmacodynamics in a patient-derived xenograft model of glioblastoma. Nat Commun. 2018 Nov 21;9(1):4904.
34 Proteogenomic integration reveals therapeutic targets in breast cancer xenografts. Nat Commun. 2017 Mar 28;8:14864.
35 Fibroblasts Mobilize Tumor Cell Glycogen to Promote Proliferation and Metastasis. Cell Metab. 2019 Jan 8;29(1):141-155.e9.
36 Phosphotyrosine-based-phosphoproteomics scaled-down to biopsy level for analysis of individual tumor biology and treatment selection. J Proteomics. 2017 Jun 6;162:99-107.
37 Endogenous NO upon estradiol-17beta stimulation and NO donor differentially regulate mitochondrial S-nitrosylation in endothelial cells. Endocrinology. 2014 Aug;155(8):3005-16.
38 Dual Labeling Biotin Switch Assay to Reduce Bias Derived From Different Cysteine Subpopulations: A Method to Maximize S-Nitrosylation Detection. Circ Res. 2015 Oct 23;117(10):846-57.
39 Proteome-wide detection of S-nitrosylation targets and motifs using bioorthogonal cleavable-linker-based enrichment and switch technique. Nat Commun. 2019 May 16;10(1):2195.
40 Direct Proteomic Mapping of Cysteine Persulfidation. Antioxid Redox Signal. 2020 Nov 20;33(15):1061-1076.
41 Site-Specific Quantification of Persulfidome by Combining an Isotope-Coded Affinity Tag with Strong Cation-Exchange-Based Fractionation. Anal Chem. 2019 Dec 3;91(23):14860-14864.
42 A proteome-wide, quantitative survey of in vivo ubiquitylation sites reveals widespread regulatory roles. Mol Cell Proteomics. 2011 Oct;10(10):M111.013284.
43 Systematic and quantitative assessment of the ubiquitin-modified proteome. Mol Cell. 2011 Oct 21;44(2):325-40.
44 Redox-based reagents for chemoselective methionine bioconjugation. Science. 2017 Feb 10;355(6325):597-602.

If you find any error in data or bug in web service, please kindly report it to Dr. Yin and Dr. Li.