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Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of Insubria at Busto Arsizio [email protected]

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Page 1: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Implementation of radiotracers use in methods for differential analysis of protein

expression

Mauro FasanoCentre of NeuroScience

and DBSFUniversity of Insubria

at Busto [email protected]

Page 2: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Outline

• Background, state of the art(adapted from my presentation at the Varese meeting)

• The toy-project

• Update in protein arrays technology

Page 3: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Proteome

• The set of proteins encoded by the genome• The set of all p. isoforms, their

modifications, their interactions• The set of p. as above in relationship to a

given state (disease, treatment, time, etc.)

40000 Genes 40000 Genes 1 Million Proteins 1 Million Proteins

Page 4: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

40000 Genes 40000 Genes 1 Million 1 Million ProteinsProteins

• Post-translational modifications

• Splice variants

• Proteolytical processing

Page 5: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Proteome is dynamic…

Page 6: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

The classical approach

Sample solubilization

IEF

SDS - PAGE

Display of results

Gel analysis

Mass spectrometry (MALDI)

Page 7: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

The classical approach

Sample solubilization

IEF

SDS - PAGE

Display of results

Gel analysis

Mass spectrometry (MALDI)

UREA 7M, THIOUREA 2M, CHAPS 4%

Page 8: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

The classical approach

Sample solubilization

IEF

SDS - PAGE

Display of results

Gel analysis

Mass spectrometry (MALDI)

Page 9: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

The classical approach

Sample solubilization

IEF

SDS - PAGE

Display of results

Gel analysis

Mass spectrometry (MALDI)

Page 10: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

The classical approach

Sample solubilization

IEF

SDS - PAGE

Display of results

Gel analysis

Mass spectrometry (MALDI)

•Immunoblotting

•Coomassie Blue or silver staining

Page 11: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

The classical approach

Sample solubilization

IEF

SDS - PAGE

Display of results

Gel analysis

Mass spectrometry (MALDI)

Page 12: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

The classical approach

Sample solubilization

IEF

SDS - PAGE

Display of results

Gel analysis

Mass spectrometry (MALDI)

Page 13: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Protein identification

• Immunoblot (against selected proteins)

• Digest, MS & database query

• Digest & MS/MS

Page 14: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Immunoblot(Western blot)

EE

Reagent

Excited product

LIGHTLIGHT

Page 15: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Database query with peptide masses

Page 16: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of
Page 17: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

MS/MS

Page 18: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Limits of the classical approach

• Too many proteins in the sample• Only the most abundant proteins are displayed and

identified• Small & hydrophobic proteins are not adequately

separated• Low-abundance proteins are hindered by more

abundant ones• Gels are not always reproducible

Page 19: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Making it simpler…

• Subcellular fractionation

• Affinity tags

• Enrich for specific post-translational modifications

• Protein-protein interaction (Interactomics)

Page 20: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Quantitative proteomics

1. Differential Gel Electrophoresis

2. Gel-free MS with ICAT

Page 21: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

DIGE ®

Page 22: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

DIGE ®

Page 23: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Isotope-coded affinity tagging

Page 24: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Phosphoproteomics

• Enrichment of phosphopeptides• Immunoblot (anti-pSer, etc.)

or

• in vitro labeling with 32P

Page 25: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

The toy project

• Task 1:Task 1: real-time acquisition of western blots with radiolabelled probes

• Task 2:Task 2: development of an antibody array to perform simultaneous multiple Western blots

• Task 3:Task 3: differential in-gel electrophoresis by using tracers at different energy (32P and 33P)

Page 26: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Real-time western blots

B

S*S*

Page 27: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Real-time western blots

Mic

rostrip

sen

sor

Page 28: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Miniaturized multi-western array

B

S*S*

Page 29: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Spotting antibodies on a membrane

120000 spots on a

25 x 75 mm slide

(64 spots per mm2)

Page 30: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

RadioDIGE

+

+

P P 32P

P P 33P

32P

32P

32P

32P

33P

33P

Healthy

Diseased

Page 31: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Mix and separate by 2D-PAGE

32P

33P

Page 32: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Other Matters

• Multiplexing protein-protein interactions

– Assays in solution– Zeptosens CeLyA– Biacore affinity chip

– Peptide chips

Page 33: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Cell Lysate Assay

Witterswil, Switzerland-based Zeptosens has developed a method based on planar waveguides (PWGs), modifying the standard glass-slide substrate with a thin film of tantalum pentoxide (Ta2O5). This high-refractive-index material guides laser light on the surface of the chip only, permitting selective detection of captured labels.

Page 34: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

The Biacore Approach

Biacore, Uppsala, Sweden

Page 35: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

The Jerini approach

• Take the enzyme (e.g., kinase)• Scan databases for potential targets• Synthesize and array 20000 peptides on

a chip• Incubate with the kinase and 32P-ATP

Jerini peptide technol., Berlin

Page 36: Implementation of radiotracers use in methods for differential analysis of protein expression Mauro Fasano Centre of NeuroScience and DBSF University of

Further readings

• Nature Insight in the 13 March 2003 issue (Vol. 422, p. 191 and ff.)

• Proteomics in multiplex. Nature 429, 101-107 (2004)

• Protein Microarrays Mature. The Scientist 18, 42 (August 2004 issue)