SlideShare uma empresa Scribd logo
1 de 37
Post Translational Modifications
of Proteins
• It is the chemical modification of protein after
its translation.
• Key role in functional Proteomics.
• They regulate activity, localization and
interaction with other cellular molecules such
as proteins, nucleic acids, lipids and cofactors.
Introduction
• Phosphorylation
• Glycosylation
• Ubiquitination
• S-Nitrosylation
• Methylation
• N-Acetylation
• Lipidation
• Proteolysis
Types of Post Translational
Modifications of Proteins
• Addition of phosphate group to a protein.
• Principally on serine, threonine or tyrosine
residues.
• Also known as Phospho regulation.
• Critical role in cell cycle, growth, apoptosis
and signal transduction pathways.
Phosphorylation
Protein kinases
ATP + protein ———————> phosphoprotein + ADP
Phosphorylation
Example
• The covalent attachment of oligosaccharides
• Addition of glycosyl group or carbohydrate
group to a protein.
• Principally on Asparagine, hydroxylysine,
serine or threonine.
• Significant effect on protein folding,
conformation, distribution, stability and
activity.
Glycosylation
Example
• N-Linked glycans
– attached to nitrogen of Asparagine or arginine side
chains.
• O-Linked glycans
– attached to hydroxy oxygen of serine,threonine
• Phospho glycans
– linked through the phosphate of serine.
• C-Linked glycans
– Rare form, Sugar is added to a carbon on tryptophan
side chain.
Classes of Glycans
• Ubiquitin is a small regulatory protein that can
be attached to the proteins and label them for
destruction.
• Effects in cell cycle regulation, control of
proliferation and differentiation, programmed
cell death (apoptosis), DNA repair, immune
and inflammatory processes and organelle
biogenesis.
Ubiquitination
Ubiquitin cycle
• Nitrosyl (NO) group is added to the protein.
• NO a chemical messanger that reacts with free
cysteine residues to form S-nitrothiols.
• Used by cells to stabilize proteins, regulate
gene expression.
S-Nitrosylation
• Addition of methyl group to a protein.
• Usually at lysine or arginine residues.
• Binds on nitrogen and oxygen of proteins
• Methyl donor is S-adenosylmethionine (SAM)
• Enzyme for this is methyltransferase
• Methylation of lysine residues in histones in
DNA is important regulator of chromatin
structure
Alkylation/Methylation
Example
Where SAM (S-adenosyl methionine) is converted into SAH(S-adenosyl homocysteine)
• Addition of acetyl group to the nitrogen.
• Histones are acetylated on lysine residues in
the N-terminal tail as a part of gene
regulation.
• Involved in regulation of transcription factors,
effector proteins, molecular chaperons and
cytoskeletal proteins.
• Methionine aminopeptidase (MAP) is an
enzyme responsible for N-terminal acetylation
N-Acetylation
Example
Where,
HDACs = Histone deactyllase ,
KATs = N-acetyltransferase.
• Lipidation attachment of a lipid group, such as
a fatty acid, covalently to a protein.
• In general, lipidation helps in cellular
localization and targeting signals, membrane
tethering and as mediator of protein-protein
interactions.
Lipidation
• C-terminal glycosyl phosphatidylinositol (GPI)
anchor
• N-terminal myristoylation
• S-palmitoylation
• S-prenylation
Types of lipidation
C-terminal glycosyl
phosphatidylinositol (GPI) anchor
• GPI anchors tether cell surface proteins to the
plasma membrane
• GPI-anchored proteins are often localized to
cholesterol- and sphingolipid-rich lipids, which
act as signaling platforms on the plasma
membrane.
N-myristoylation
• It is the attachment of myristoyl group a 14-
carbon saturated fatty acid (C14) to a protein.
• It is facilitated by N-myristoyltransferase (NMT)
and uses myristoyl-CoA as the substrate.
S-palmitoylation
• It is addition of C16 palmitoyl group from
palmitoyl-CoA
• Palmitoyl acyl transferases (PATs) enzyme
favors this step.
• Reversed by thioesterases
S-prenylation
• Addition of a farnesyl (C15) or geranylgeranyl
(C20) group to proteins.
• Enzyme involved in this reaction is farnesyl
transferase (FT) or geranylgeranyl transferases
(GGT I and II).
Disulfide Bonding
• Disulfide bonds are covalent bonds formed
between two cysteine residues (R-S-S-R).
• These bonds contribute to the correct folding of
proteins as other elements of secondary
structure
Disulfide Bonding
• Cleavage of peptide bonds by proteases.
• Examples of Proteases- Serine Proteases,
Cysteine Proteases, Aspartic acid Proteases.
• Involved in Antigen processing, Apoptosis, Cell
signalling
Proteolysis
• Mass spectrometry
• HPLC analysis
• Incorporation of radioactive groups by addition to
growing cells
– e.g., 75Se-labeling and chromatographic
isolation of proteins
• Antibody cross-reactivity
– e.g., antibody against phosphotyrosine
• Polyacrylamide gel electrophoresis (PAGE)
Identification of modifications
Identification of modifications
small-molecule modifications can affect not only the activity, but also the structure of
proteins, much as ligands such as ATP can affect the activity and structure of proteins
use 2D gel electrophoresis to
detect modified proteins in
whole-cell (or partly purified)
lysates
O-GlcNAc is an abundant modification of nucleocytoplasmic proteins.
Nucleo-cytoplasmic proteins from HeLa cells were immunopurified with an
O-GlcNAc-specific antibody and stringently washed, and the O-GlcNAc-
containing proteins were specifically eluted with free GlcNAc. The resulting
proteins were separated on two-dimensional gels and visualized by silver
staining. pI, isoelectric point; MW, molecular weight.
From Wells et al. (2001) Science 291, 2376-8.
• Jensen, O., N (2004) Modification-specific proteomics:
Characterization of post-translational modifications by mass
spectrometry. Current Openings in bio-chemistry. 8, 33-41
• Mann, M and Jensen, O., N (2003) Proteomic analysis of post-
translational modifications. Nature Biotechnology. 21, 255-261.
• Matsubayashi, Y (2012) Recent advances in research on small
post-translationally modified peptide signals in plants. Genes to
Cells 17, 1-10.
• Ralp, A. Bradshaw and Albert, E. Stewart (1994) Analysis of
protein modifications: Recent advances in detection,
characterization and mapping. 5(1), 85-93.
• Walsh C. (2006) Posttranslational modification of proteins :
Expanding nature's inventory. Englewood, Colo.: Roberts and
Co. Publishers. xxi, 490 p. p.
• Gaston B. M. et al. (2003) S-nitrosylation signaling in cell
biology. Mol Interv. 3, 253-63.
• Jaffrey S. R. and Snyder S. H. (2001) The biotin switch method
for the detection of S-nitrosylated proteins. Sci STKE. 2001, pl1.
• Han P. and Chen C. (2008) Detergent-free biotin switch
combined with liquid chromatography/tandem mass
spectrometry in the analysis of S-nitrosylated proteins. Rapid
Commun Mass Spectrom. 22, 1137-45.
References
THANK YOU

Mais conteúdo relacionado

Mais procurados

Mais procurados (20)

Translation in prokaryotes
Translation in prokaryotesTranslation in prokaryotes
Translation in prokaryotes
 
Post translational modification
Post translational modificationPost translational modification
Post translational modification
 
Ramachandran plot
Ramachandran plotRamachandran plot
Ramachandran plot
 
Bacteriophage vectors
Bacteriophage vectorsBacteriophage vectors
Bacteriophage vectors
 
Protein sorting and targeting
Protein sorting and targetingProtein sorting and targeting
Protein sorting and targeting
 
DNA protein interaction.pptx
DNA protein interaction.pptxDNA protein interaction.pptx
DNA protein interaction.pptx
 
Translation in Prokaryotes
Translation in ProkaryotesTranslation in Prokaryotes
Translation in Prokaryotes
 
Protein dna interactions
Protein dna interactionsProtein dna interactions
Protein dna interactions
 
Trp operon
Trp operonTrp operon
Trp operon
 
Dna repair mechanisms
Dna repair mechanismsDna repair mechanisms
Dna repair mechanisms
 
Protein protein interaction
Protein protein interactionProtein protein interaction
Protein protein interaction
 
Eukaryotic DNA replication
Eukaryotic DNA replicationEukaryotic DNA replication
Eukaryotic DNA replication
 
Linker, Adaptor, Homopolymeric Tailing & Terminal Transferase
Linker, Adaptor, Homopolymeric Tailing & Terminal TransferaseLinker, Adaptor, Homopolymeric Tailing & Terminal Transferase
Linker, Adaptor, Homopolymeric Tailing & Terminal Transferase
 
Sequencing of protein
Sequencing of proteinSequencing of protein
Sequencing of protein
 
Restriction Mapping
Restriction MappingRestriction Mapping
Restriction Mapping
 
Gene silencing
Gene silencing Gene silencing
Gene silencing
 
Transcription in eukaryotes
Transcription in eukaryotesTranscription in eukaryotes
Transcription in eukaryotes
 
Rolling Circle Model of DNA Replication
Rolling Circle Model of DNA ReplicationRolling Circle Model of DNA Replication
Rolling Circle Model of DNA Replication
 
Site directed mutagenesis
Site  directed mutagenesisSite  directed mutagenesis
Site directed mutagenesis
 
Transcription in prokaryotes
Transcription in prokaryotesTranscription in prokaryotes
Transcription in prokaryotes
 

Semelhante a post translational modifications of protein

Semelhante a post translational modifications of protein (20)

Post Translational Modification
Post Translational ModificationPost Translational Modification
Post Translational Modification
 
post translational modification.pptx
post translational modification.pptxpost translational modification.pptx
post translational modification.pptx
 
Post translation control-regulation_of_gene_expression_in_eukaryotes - copy
Post translation control-regulation_of_gene_expression_in_eukaryotes - copyPost translation control-regulation_of_gene_expression_in_eukaryotes - copy
Post translation control-regulation_of_gene_expression_in_eukaryotes - copy
 
Gene expression & regulation part iii
Gene expression & regulation part iiiGene expression & regulation part iii
Gene expression & regulation part iii
 
Post translation modification of protein
Post translation modification of proteinPost translation modification of protein
Post translation modification of protein
 
Postranslational Modification--short.ppt
Postranslational Modification--short.pptPostranslational Modification--short.ppt
Postranslational Modification--short.ppt
 
post-translational modification
post-translational modificationpost-translational modification
post-translational modification
 
Post translational modification of protien
Post translational modification of protienPost translational modification of protien
Post translational modification of protien
 
Post tranlational modification
Post tranlational modificationPost tranlational modification
Post tranlational modification
 
Acetylation
AcetylationAcetylation
Acetylation
 
Post translational modifications
Post translational modificationsPost translational modifications
Post translational modifications
 
Regulation of gene expression in eukariyotic organisms
Regulation of gene expression in eukariyotic organismsRegulation of gene expression in eukariyotic organisms
Regulation of gene expression in eukariyotic organisms
 
Brief introduction of post-translational modifications (PTMs)
Brief introduction of post-translational modifications (PTMs)Brief introduction of post-translational modifications (PTMs)
Brief introduction of post-translational modifications (PTMs)
 
POST TRANSLATIONAL MODIFICATIONS.pptx
POST TRANSLATIONAL MODIFICATIONS.pptxPOST TRANSLATIONAL MODIFICATIONS.pptx
POST TRANSLATIONAL MODIFICATIONS.pptx
 
POST TRANSLITIONAL MODIFICATION
POST TRANSLITIONAL MODIFICATIONPOST TRANSLITIONAL MODIFICATION
POST TRANSLITIONAL MODIFICATION
 
Post-Translational Modification
Post-Translational ModificationPost-Translational Modification
Post-Translational Modification
 
Group 7 - Post Translational Modifications.pptx
Group 7 - Post Translational Modifications.pptxGroup 7 - Post Translational Modifications.pptx
Group 7 - Post Translational Modifications.pptx
 
27 protease
27 protease27 protease
27 protease
 
Post-Translational Modification
Post-Translational ModificationPost-Translational Modification
Post-Translational Modification
 
Post translational modifications
Post translational modificationsPost translational modifications
Post translational modifications
 

Último

Último (20)

General Principles of Intellectual Property: Concepts of Intellectual Proper...
General Principles of Intellectual Property: Concepts of Intellectual  Proper...General Principles of Intellectual Property: Concepts of Intellectual  Proper...
General Principles of Intellectual Property: Concepts of Intellectual Proper...
 
Accessible Digital Futures project (20/03/2024)
Accessible Digital Futures project (20/03/2024)Accessible Digital Futures project (20/03/2024)
Accessible Digital Futures project (20/03/2024)
 
Exploring_the_Narrative_Style_of_Amitav_Ghoshs_Gun_Island.pptx
Exploring_the_Narrative_Style_of_Amitav_Ghoshs_Gun_Island.pptxExploring_the_Narrative_Style_of_Amitav_Ghoshs_Gun_Island.pptx
Exploring_the_Narrative_Style_of_Amitav_Ghoshs_Gun_Island.pptx
 
HMCS Vancouver Pre-Deployment Brief - May 2024 (Web Version).pptx
HMCS Vancouver Pre-Deployment Brief - May 2024 (Web Version).pptxHMCS Vancouver Pre-Deployment Brief - May 2024 (Web Version).pptx
HMCS Vancouver Pre-Deployment Brief - May 2024 (Web Version).pptx
 
This PowerPoint helps students to consider the concept of infinity.
This PowerPoint helps students to consider the concept of infinity.This PowerPoint helps students to consider the concept of infinity.
This PowerPoint helps students to consider the concept of infinity.
 
Basic Civil Engineering first year Notes- Chapter 4 Building.pptx
Basic Civil Engineering first year Notes- Chapter 4 Building.pptxBasic Civil Engineering first year Notes- Chapter 4 Building.pptx
Basic Civil Engineering first year Notes- Chapter 4 Building.pptx
 
Plant propagation: Sexual and Asexual propapagation.pptx
Plant propagation: Sexual and Asexual propapagation.pptxPlant propagation: Sexual and Asexual propapagation.pptx
Plant propagation: Sexual and Asexual propapagation.pptx
 
SOC 101 Demonstration of Learning Presentation
SOC 101 Demonstration of Learning PresentationSOC 101 Demonstration of Learning Presentation
SOC 101 Demonstration of Learning Presentation
 
How to Give a Domain for a Field in Odoo 17
How to Give a Domain for a Field in Odoo 17How to Give a Domain for a Field in Odoo 17
How to Give a Domain for a Field in Odoo 17
 
Interdisciplinary_Insights_Data_Collection_Methods.pptx
Interdisciplinary_Insights_Data_Collection_Methods.pptxInterdisciplinary_Insights_Data_Collection_Methods.pptx
Interdisciplinary_Insights_Data_Collection_Methods.pptx
 
TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...
TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...
TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...
 
80 ĐỀ THI THỬ TUYỂN SINH TIẾNG ANH VÀO 10 SỞ GD – ĐT THÀNH PHỐ HỒ CHÍ MINH NĂ...
80 ĐỀ THI THỬ TUYỂN SINH TIẾNG ANH VÀO 10 SỞ GD – ĐT THÀNH PHỐ HỒ CHÍ MINH NĂ...80 ĐỀ THI THỬ TUYỂN SINH TIẾNG ANH VÀO 10 SỞ GD – ĐT THÀNH PHỐ HỒ CHÍ MINH NĂ...
80 ĐỀ THI THỬ TUYỂN SINH TIẾNG ANH VÀO 10 SỞ GD – ĐT THÀNH PHỐ HỒ CHÍ MINH NĂ...
 
Unit 3 Emotional Intelligence and Spiritual Intelligence.pdf
Unit 3 Emotional Intelligence and Spiritual Intelligence.pdfUnit 3 Emotional Intelligence and Spiritual Intelligence.pdf
Unit 3 Emotional Intelligence and Spiritual Intelligence.pdf
 
Application orientated numerical on hev.ppt
Application orientated numerical on hev.pptApplication orientated numerical on hev.ppt
Application orientated numerical on hev.ppt
 
On National Teacher Day, meet the 2024-25 Kenan Fellows
On National Teacher Day, meet the 2024-25 Kenan FellowsOn National Teacher Day, meet the 2024-25 Kenan Fellows
On National Teacher Day, meet the 2024-25 Kenan Fellows
 
Fostering Friendships - Enhancing Social Bonds in the Classroom
Fostering Friendships - Enhancing Social Bonds  in the ClassroomFostering Friendships - Enhancing Social Bonds  in the Classroom
Fostering Friendships - Enhancing Social Bonds in the Classroom
 
Wellbeing inclusion and digital dystopias.pptx
Wellbeing inclusion and digital dystopias.pptxWellbeing inclusion and digital dystopias.pptx
Wellbeing inclusion and digital dystopias.pptx
 
Single or Multiple melodic lines structure
Single or Multiple melodic lines structureSingle or Multiple melodic lines structure
Single or Multiple melodic lines structure
 
Sensory_Experience_and_Emotional_Resonance_in_Gabriel_Okaras_The_Piano_and_Th...
Sensory_Experience_and_Emotional_Resonance_in_Gabriel_Okaras_The_Piano_and_Th...Sensory_Experience_and_Emotional_Resonance_in_Gabriel_Okaras_The_Piano_and_Th...
Sensory_Experience_and_Emotional_Resonance_in_Gabriel_Okaras_The_Piano_and_Th...
 
NO1 Top Black Magic Specialist In Lahore Black magic In Pakistan Kala Ilam Ex...
NO1 Top Black Magic Specialist In Lahore Black magic In Pakistan Kala Ilam Ex...NO1 Top Black Magic Specialist In Lahore Black magic In Pakistan Kala Ilam Ex...
NO1 Top Black Magic Specialist In Lahore Black magic In Pakistan Kala Ilam Ex...
 

post translational modifications of protein

  • 2. • It is the chemical modification of protein after its translation. • Key role in functional Proteomics. • They regulate activity, localization and interaction with other cellular molecules such as proteins, nucleic acids, lipids and cofactors. Introduction
  • 3.
  • 4.
  • 5. • Phosphorylation • Glycosylation • Ubiquitination • S-Nitrosylation • Methylation • N-Acetylation • Lipidation • Proteolysis Types of Post Translational Modifications of Proteins
  • 6.
  • 7. • Addition of phosphate group to a protein. • Principally on serine, threonine or tyrosine residues. • Also known as Phospho regulation. • Critical role in cell cycle, growth, apoptosis and signal transduction pathways. Phosphorylation Protein kinases ATP + protein ———————> phosphoprotein + ADP
  • 10. • The covalent attachment of oligosaccharides • Addition of glycosyl group or carbohydrate group to a protein. • Principally on Asparagine, hydroxylysine, serine or threonine. • Significant effect on protein folding, conformation, distribution, stability and activity. Glycosylation
  • 12. • N-Linked glycans – attached to nitrogen of Asparagine or arginine side chains. • O-Linked glycans – attached to hydroxy oxygen of serine,threonine • Phospho glycans – linked through the phosphate of serine. • C-Linked glycans – Rare form, Sugar is added to a carbon on tryptophan side chain. Classes of Glycans
  • 13. • Ubiquitin is a small regulatory protein that can be attached to the proteins and label them for destruction. • Effects in cell cycle regulation, control of proliferation and differentiation, programmed cell death (apoptosis), DNA repair, immune and inflammatory processes and organelle biogenesis. Ubiquitination
  • 15.
  • 16. • Nitrosyl (NO) group is added to the protein. • NO a chemical messanger that reacts with free cysteine residues to form S-nitrothiols. • Used by cells to stabilize proteins, regulate gene expression. S-Nitrosylation
  • 17.
  • 18. • Addition of methyl group to a protein. • Usually at lysine or arginine residues. • Binds on nitrogen and oxygen of proteins • Methyl donor is S-adenosylmethionine (SAM) • Enzyme for this is methyltransferase • Methylation of lysine residues in histones in DNA is important regulator of chromatin structure Alkylation/Methylation
  • 19. Example Where SAM (S-adenosyl methionine) is converted into SAH(S-adenosyl homocysteine)
  • 20. • Addition of acetyl group to the nitrogen. • Histones are acetylated on lysine residues in the N-terminal tail as a part of gene regulation. • Involved in regulation of transcription factors, effector proteins, molecular chaperons and cytoskeletal proteins. • Methionine aminopeptidase (MAP) is an enzyme responsible for N-terminal acetylation N-Acetylation
  • 22. Where, HDACs = Histone deactyllase , KATs = N-acetyltransferase.
  • 23. • Lipidation attachment of a lipid group, such as a fatty acid, covalently to a protein. • In general, lipidation helps in cellular localization and targeting signals, membrane tethering and as mediator of protein-protein interactions. Lipidation
  • 24. • C-terminal glycosyl phosphatidylinositol (GPI) anchor • N-terminal myristoylation • S-palmitoylation • S-prenylation Types of lipidation
  • 25. C-terminal glycosyl phosphatidylinositol (GPI) anchor • GPI anchors tether cell surface proteins to the plasma membrane • GPI-anchored proteins are often localized to cholesterol- and sphingolipid-rich lipids, which act as signaling platforms on the plasma membrane.
  • 26. N-myristoylation • It is the attachment of myristoyl group a 14- carbon saturated fatty acid (C14) to a protein. • It is facilitated by N-myristoyltransferase (NMT) and uses myristoyl-CoA as the substrate.
  • 27. S-palmitoylation • It is addition of C16 palmitoyl group from palmitoyl-CoA • Palmitoyl acyl transferases (PATs) enzyme favors this step. • Reversed by thioesterases
  • 28.
  • 29. S-prenylation • Addition of a farnesyl (C15) or geranylgeranyl (C20) group to proteins. • Enzyme involved in this reaction is farnesyl transferase (FT) or geranylgeranyl transferases (GGT I and II).
  • 30. Disulfide Bonding • Disulfide bonds are covalent bonds formed between two cysteine residues (R-S-S-R). • These bonds contribute to the correct folding of proteins as other elements of secondary structure
  • 32. • Cleavage of peptide bonds by proteases. • Examples of Proteases- Serine Proteases, Cysteine Proteases, Aspartic acid Proteases. • Involved in Antigen processing, Apoptosis, Cell signalling Proteolysis
  • 33.
  • 34. • Mass spectrometry • HPLC analysis • Incorporation of radioactive groups by addition to growing cells – e.g., 75Se-labeling and chromatographic isolation of proteins • Antibody cross-reactivity – e.g., antibody against phosphotyrosine • Polyacrylamide gel electrophoresis (PAGE) Identification of modifications
  • 35. Identification of modifications small-molecule modifications can affect not only the activity, but also the structure of proteins, much as ligands such as ATP can affect the activity and structure of proteins use 2D gel electrophoresis to detect modified proteins in whole-cell (or partly purified) lysates O-GlcNAc is an abundant modification of nucleocytoplasmic proteins. Nucleo-cytoplasmic proteins from HeLa cells were immunopurified with an O-GlcNAc-specific antibody and stringently washed, and the O-GlcNAc- containing proteins were specifically eluted with free GlcNAc. The resulting proteins were separated on two-dimensional gels and visualized by silver staining. pI, isoelectric point; MW, molecular weight. From Wells et al. (2001) Science 291, 2376-8.
  • 36. • Jensen, O., N (2004) Modification-specific proteomics: Characterization of post-translational modifications by mass spectrometry. Current Openings in bio-chemistry. 8, 33-41 • Mann, M and Jensen, O., N (2003) Proteomic analysis of post- translational modifications. Nature Biotechnology. 21, 255-261. • Matsubayashi, Y (2012) Recent advances in research on small post-translationally modified peptide signals in plants. Genes to Cells 17, 1-10. • Ralp, A. Bradshaw and Albert, E. Stewart (1994) Analysis of protein modifications: Recent advances in detection, characterization and mapping. 5(1), 85-93. • Walsh C. (2006) Posttranslational modification of proteins : Expanding nature's inventory. Englewood, Colo.: Roberts and Co. Publishers. xxi, 490 p. p. • Gaston B. M. et al. (2003) S-nitrosylation signaling in cell biology. Mol Interv. 3, 253-63. • Jaffrey S. R. and Snyder S. H. (2001) The biotin switch method for the detection of S-nitrosylated proteins. Sci STKE. 2001, pl1. • Han P. and Chen C. (2008) Detergent-free biotin switch combined with liquid chromatography/tandem mass spectrometry in the analysis of S-nitrosylated proteins. Rapid Commun Mass Spectrom. 22, 1137-45. References