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Prof. Ulises   Urzúa   ICBM, Facultad de Medicina, Universidad de Chile [email_address] DNA microarrays in genomics and cancer Clase ToxGen-Nov08
 
(1982 - 2002)
Actualizado, 31 Dic 2008
One gene…or many genes? Environment and life-style are major contributors to the pathogenesis of complex diseases
Legal Issues in Genomic Medicine "We won't be able to offer you a position with our company. The results of our genetic tests suggest that you have a predisposition to attention deficit disorder. Mr. Jones? Mr. Jones?"
Genetic Information Nondiscrimination Act of 2008
Medicina personalizada http://www.jyi.org/features/ft.php?id=1047
Tumor classification, risk assessment, prognosis prediction Microarray CGH Drug development, therapy development, disease progression Mutation &Polymorphism analysis Drug development, drug response, therapy development Transcriptional analysis Application Approach Major microarray applications
[object Object],[object Object],[object Object],[object Object]
Affimetrix GeneChip ®  MicroArrays 20µm Millions of copies of a specific oligonucleotide probe Image of Hybridized Probe Array >400,000 different complementary probes  Single stranded,  labeled RNA target Oligonucleotide probe 1.28cm GeneChip   Probe Array Hybridized Probe Cell Suited for both expression profiling and genotyping * * * * *
Affimetrix GeneChip ®   5´ 3´ Oligo arrays Gene PerfectMatch Mismatch Multiple   oligo probes on off 24  µm
   The photolitographic technique used in  Affimetrix GeneChips TM  allows obtaining ultra high-density microarrays (up to 10 6  probes/cm 2 ) GeneChip workstation
[object Object],[object Object],[object Object],[object Object]
A comparative hybridization experiment
Mouse NIA 15K cDNA microarray, block 15 (from 32 total) -  Cy5  mouse ovarian cell line (total RNA) -  Cy3  reference whole newborn mouse  (total RNA) Microarrays allows only comparative (relative) measurements Genes up-regulated in mouse ovarian cells  Genes up-regulated in the reference RNA   Genes equally expressed in both samples
BioRobotics Arrayer Plate loader and lid remover Refrigerated Biobank (holds up to 24 microtiter plates) Wash baths for cleaning the pins The four platforms are capable  of holding 120 slides
A 32 pin holder with  pins loaded
Telechem pins   ,[object Object],[object Object],Total uptake volumes   0.25  0.6  2.5 µl Contact deposition
50% DMSO Advantages :  denatures the DNA; low evaporation rate; interacts well with GAPS coating thus generating uniform spots. Disadvantages :   Strong irritant; tends to form spots of large diameter, sometimes causing them to merge; DNA aggregates when DMSO concentration is above 70%. 3X SSC Advantages :  Aqueous solvent; produces spots of small diameter, allowing high printing density. Disadvantages :  Does not denature the DNA; evaporates quickly so that carefully controlled printing environment is required. 150 mM NaPO4, pH 8.5 Similar to 3X SSC in terms of advantages and disadvantages Spotting solutions
Crosslinking of DNA to polylysine coated glass   - GAPS (gamma aminopropyl silane) coating.
Hybridization Manual hybridization chambers  (TELECHEM-Arrayit )  - 20 to 50  µ l of hyb cocktail  - prone towards significant experimental variability. Automatic hybridization station: - Over 120  µ l of hyb cocktail  - less variability in replicates  - washing also automated
Fluorescence scanners ScanArray Lite (Perkin-Elmer) GenePix 4000B (Axon)
Exercise # 1 ,[object Object],[object Object],[object Object]
Experimental design and variability ,[object Object],[object Object],[object Object],[object Object],[object Object]
Microarray data workflow ,[object Object],[object Object],[object Object],[object Object],[object Object],Experimental Analisis numérico Interpretacion ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Corrección técnica (experimental)
 
Print-tip Loess normalization 3 6
Array #3 Print-tip display
Array #6 Print-tip display
Array #3 “MA” plot M = log 2 R  - log 2 G   A = (log 2 R  + log 2 G ) / 2
Array #6 “MA” plot
Scale adjustment
Microarray data workflow ,[object Object],[object Object],[object Object],[object Object],[object Object],Experimental Analisis numérico Interpretacion ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Corrección técnica (experimental) Corrección estadística
Differentially expressed genes:     the problem of multiple testing - ANOVA test, 40 arrays, 7 samples - FWER (family wise error rate), type I error or false positive. Urzúa et al. (2006)  J. Cell. Physiol. 206, 594-602
Dataset structure -filtering hierarchy   Statistical tests Co-expression Correlation, etc (multiple test control) Raw dataset Processed and normalized subset Candidate genes Functional groups Pathway analysis  Text-mining (interpretation)  Interaction gene/groups networks
Case # 1 ,[object Object]
Ovarian cancer: risk factors and possible etiology ,[object Object],[object Object],[object Object],[object Object]
Generation of a mouse model Roby et al., Carcinogenesis 21, 585-594, 2000. pass 5 MOSE  (mouse ovarian surface epithelial) cells
 
MOSE clonal cells produce tumors in immunocompetent mice Roby et al., Carcinogenesis 21, 585-594, 2000 .
 
Self organizing tree algorithm (SOTA) clustering Urzúa et al. (2006)  J. Cell. Physiol. 206, 594-602
Human-Mouse Comparison   ,[object Object],[object Object],Urzúa et al. (2006)  J. Cell. Physiol. 206, 594-602
Microarray-CGH concept
 
 
 
 
Gene expression array   Microarray-CGH  Microarray-CGH…  How to deal with the genome complexity? RNA (cDNA) hybridized  Genomic DNA hybridized
[object Object],[object Object]
Microarray-CGH, experimental optimization Urzúa et al. (2005) Tumor Biol. 26, 236-44
Conventional-CGH vs microarray-CGH Z-score Frankenberger et al. (2006) Appl. Bioinformatics 5, 125-30
Exercise # 2 Web-aCGH, microarray CGH data analysis and display. http://129.43.22.27/WebaCGH/welcome.htm
Focus: clusters of > 50 lymphocytes  Focus score : number of focus/40mm 2  glandular tissue  (0    4)  Ducto Acino Focal lip sialadenitis in Sjogren`s syndrome
Case # 2 LSGs expression pattern in Sjogren´s syndrome patients  - Correlation with clinical parameters
Isolation of epithelial cells
 
Positively correlated gene expression Negatively correlated gene expression Epithelial gene expression  VS focus score
Top ranked LSG acini expressed genes correlated to focus score   a n.r.d. 2,13 1.09 (+), 0.74 RING1 , Ring finger protein 1 n.r.d. 2,33 1.22 (+), 0.85 FYB , FYN binding protein (FYB-120/130) n.r.d. 1,97 0.98 (+), 0.79 IL10RA , interleukin 10 receptor, alpha Ohyama et al. (1995), 7621031 3,73 1.90 (+), 0.82 CD69 , CD69 antigen (p60, early T-cell activation antigen) n.r.d. 2,41 1.27 (+), 0.89 SERPINB1 , Serpin peptidase inhibitor, clade B (ovalbumin), member 1 Dimitriou et al. (2002), 11876766 6,11 2.61 (+), 0.82 HLA-DRA , Major histocompatibility complex, class II, DR alpha Kay et al. (1995), 7558918 2,81 1.49 (+), 0.84 TRBV2 , T cell receptor beta variable 2 n.r.d. 3,39 1.76 (+), 0.84 NQO2 , NAD(P)H dehydrogenase, quinone 2 Ogawa et al. (2002), 12384933 5,17 2.37 (+), 0.83 CXCL9 , chemokine (C-X-C motif) ligand 9 Fei et al. (1991), 1685512 3,29 1.72 (+), 0.77 HLA-DQA1 , Major histocompatibility complex, class II, DQ alpha 1 n.r.d. 4,86 2.28 (+), 0.89 HLA-DMA , major histocompatibility complex class II, DM alpha n.r.d. 3,10 1.63 (+), 0.85 LCP1 , L plastin, actin binding protein Loiseau et al. (2001), 11423179 5,54 2.47 (+), 0.82 HLA-A , major histocompatibility complex, class I, A n.r.d.  d 2,62 1.39 (+), 0.83 RAC2 , ras-related C3 botulinum toxin substrate 2 Azuma et al. (2002), 11947921 3,23 1.69 (+), 0.86 LAPTM5 , Lysosomal associated multispanning membrane protein 5 Previously reported in SS, PMID Gene expression shift (ratio) Gene expression shift (log 2 )  c Direction of correlation, R 2  value  b GENE SYMBOL , description
Are they  chromosomal neighbors? Gene expression phenotype correlation (1) Positively correlated gene expression Negatively correlated gene expression
Gene expression phenotype correlation (2) Functional (GO, KEGG, BioCarta) and literature (PubMed) linked genes
Strength of correlation respective to transcriptional activity Urzúa et al. (2008) in preparation
Correlation between expression profiles and multiple phenotypes   Ovarian tumor frequency Number of litters Litter size 89 280 73 0 0 0 145
Case # 3 Gene expression profiling in ovarian carcinomas
Gene expression differences - IOSE vs EOC III  (t-test)  actin cytoskeleton   regulation of protein metabolism   blood coagulation   response to wounding   apoptosis  
Gene expression differences - IOSE vs EOC III  (Anova)
NGF signaling pathway and related genes
Case # 4 Wine yeast genomics
L846  (cepa nativa)   L846 ura-  (mutante espontánea para uracilo, producto de esporulación) Spt2 overexpression is concomitant with transposable elements repression ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],?
Yeast genome may undergo genomic changes when exposed to the environment S288C v/s S288C S288C v/s S288C EC1118 v/s S288C L-1333 v/s S288C L-957 v/s S288C S288C= cepa estándar de laboratorio EC1118= cepa comercial francesa  L-1333= cepa aislada en Casablanca  L-957= cepa aislada en Mendoza
Case # 5 Norovirus genotyping
SNPs in viral genome allow viruses classification
Real-time Q-PCR validation Spp1  Mt1 ——  ——  18S rRNA    ——  —— Rps16 Urzúa et al. (2006) J. Cell. Physiol. 206, 594-602
Real-time Q-PCR validation (2) Urzúa et al. (2008) in preparation
Tal como una casa se construye con ladrillos, la ciencia se construye en base a hechos... Pero un conjunto de hechos no constituye por sí sólo ciencia, tal como un montón de ladrillos no constituyen una casa. Henri Poincaré  La Science et l'Hypothese, Paris,  1908.
Agradecimientos ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Colaboradores
Gracias!   Dr. Ulises Urzúa [email_address] Fono 978-6877
Systems biology  integrates different levels of information to understand how biological organisms function.  In contrast to molecular biology,  systems biology  does not break down a system into all of its parts and study one part of the process at a time. Systems biologists argue that this reductionist approach is not robust, either because of nature's redundancy and complexity, or because we have not understood all the parts of the processes. The ultimate goal of  systems biology  is to  mathematically model  biological processes. Such models are used to predict how different changes affect the phenotype of a cell, and can be iteratively tested to prove or disprove the model. Adapted from  http://en.wikipedia.org/
Seminarios 9 de Diciembre, 2008 http://www.ncbi.nlm.nih.gov/pubmed/18596974   http://www.ncbi.nlm.nih.gov/pubmed/17766027

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DNA Microarrays in Genomics and Cancer Analysis

  • 1. Prof. Ulises Urzúa ICBM, Facultad de Medicina, Universidad de Chile [email_address] DNA microarrays in genomics and cancer Clase ToxGen-Nov08
  • 2.  
  • 5. One gene…or many genes? Environment and life-style are major contributors to the pathogenesis of complex diseases
  • 6. Legal Issues in Genomic Medicine "We won't be able to offer you a position with our company. The results of our genetic tests suggest that you have a predisposition to attention deficit disorder. Mr. Jones? Mr. Jones?"
  • 9. Tumor classification, risk assessment, prognosis prediction Microarray CGH Drug development, therapy development, disease progression Mutation &Polymorphism analysis Drug development, drug response, therapy development Transcriptional analysis Application Approach Major microarray applications
  • 10.
  • 11. Affimetrix GeneChip ® MicroArrays 20µm Millions of copies of a specific oligonucleotide probe Image of Hybridized Probe Array >400,000 different complementary probes Single stranded, labeled RNA target Oligonucleotide probe 1.28cm GeneChip Probe Array Hybridized Probe Cell Suited for both expression profiling and genotyping * * * * *
  • 12. Affimetrix GeneChip ® 5´ 3´ Oligo arrays Gene PerfectMatch Mismatch Multiple oligo probes on off 24 µm
  • 13. The photolitographic technique used in Affimetrix GeneChips TM allows obtaining ultra high-density microarrays (up to 10 6 probes/cm 2 ) GeneChip workstation
  • 14.
  • 16. Mouse NIA 15K cDNA microarray, block 15 (from 32 total) - Cy5 mouse ovarian cell line (total RNA) - Cy3 reference whole newborn mouse (total RNA) Microarrays allows only comparative (relative) measurements Genes up-regulated in mouse ovarian cells Genes up-regulated in the reference RNA Genes equally expressed in both samples
  • 17. BioRobotics Arrayer Plate loader and lid remover Refrigerated Biobank (holds up to 24 microtiter plates) Wash baths for cleaning the pins The four platforms are capable of holding 120 slides
  • 18. A 32 pin holder with pins loaded
  • 19.
  • 20. 50% DMSO Advantages : denatures the DNA; low evaporation rate; interacts well with GAPS coating thus generating uniform spots. Disadvantages : Strong irritant; tends to form spots of large diameter, sometimes causing them to merge; DNA aggregates when DMSO concentration is above 70%. 3X SSC Advantages : Aqueous solvent; produces spots of small diameter, allowing high printing density. Disadvantages : Does not denature the DNA; evaporates quickly so that carefully controlled printing environment is required. 150 mM NaPO4, pH 8.5 Similar to 3X SSC in terms of advantages and disadvantages Spotting solutions
  • 21. Crosslinking of DNA to polylysine coated glass - GAPS (gamma aminopropyl silane) coating.
  • 22. Hybridization Manual hybridization chambers (TELECHEM-Arrayit ) - 20 to 50 µ l of hyb cocktail - prone towards significant experimental variability. Automatic hybridization station: - Over 120 µ l of hyb cocktail - less variability in replicates - washing also automated
  • 23. Fluorescence scanners ScanArray Lite (Perkin-Elmer) GenePix 4000B (Axon)
  • 24.
  • 25.
  • 26.
  • 27.  
  • 31. Array #3 “MA” plot M = log 2 R - log 2 G A = (log 2 R + log 2 G ) / 2
  • 34.
  • 35. Differentially expressed genes: the problem of multiple testing - ANOVA test, 40 arrays, 7 samples - FWER (family wise error rate), type I error or false positive. Urzúa et al. (2006) J. Cell. Physiol. 206, 594-602
  • 36. Dataset structure -filtering hierarchy Statistical tests Co-expression Correlation, etc (multiple test control) Raw dataset Processed and normalized subset Candidate genes Functional groups Pathway analysis Text-mining (interpretation) Interaction gene/groups networks
  • 37.
  • 38.
  • 39. Generation of a mouse model Roby et al., Carcinogenesis 21, 585-594, 2000. pass 5 MOSE (mouse ovarian surface epithelial) cells
  • 40.  
  • 41. MOSE clonal cells produce tumors in immunocompetent mice Roby et al., Carcinogenesis 21, 585-594, 2000 .
  • 42.  
  • 43. Self organizing tree algorithm (SOTA) clustering Urzúa et al. (2006) J. Cell. Physiol. 206, 594-602
  • 44.
  • 46.  
  • 47.  
  • 48.  
  • 49.  
  • 50. Gene expression array Microarray-CGH Microarray-CGH… How to deal with the genome complexity? RNA (cDNA) hybridized Genomic DNA hybridized
  • 51.
  • 52. Microarray-CGH, experimental optimization Urzúa et al. (2005) Tumor Biol. 26, 236-44
  • 53. Conventional-CGH vs microarray-CGH Z-score Frankenberger et al. (2006) Appl. Bioinformatics 5, 125-30
  • 54. Exercise # 2 Web-aCGH, microarray CGH data analysis and display. http://129.43.22.27/WebaCGH/welcome.htm
  • 55. Focus: clusters of > 50 lymphocytes Focus score : number of focus/40mm 2 glandular tissue (0  4) Ducto Acino Focal lip sialadenitis in Sjogren`s syndrome
  • 56. Case # 2 LSGs expression pattern in Sjogren´s syndrome patients - Correlation with clinical parameters
  • 58.  
  • 59. Positively correlated gene expression Negatively correlated gene expression Epithelial gene expression VS focus score
  • 60. Top ranked LSG acini expressed genes correlated to focus score a n.r.d. 2,13 1.09 (+), 0.74 RING1 , Ring finger protein 1 n.r.d. 2,33 1.22 (+), 0.85 FYB , FYN binding protein (FYB-120/130) n.r.d. 1,97 0.98 (+), 0.79 IL10RA , interleukin 10 receptor, alpha Ohyama et al. (1995), 7621031 3,73 1.90 (+), 0.82 CD69 , CD69 antigen (p60, early T-cell activation antigen) n.r.d. 2,41 1.27 (+), 0.89 SERPINB1 , Serpin peptidase inhibitor, clade B (ovalbumin), member 1 Dimitriou et al. (2002), 11876766 6,11 2.61 (+), 0.82 HLA-DRA , Major histocompatibility complex, class II, DR alpha Kay et al. (1995), 7558918 2,81 1.49 (+), 0.84 TRBV2 , T cell receptor beta variable 2 n.r.d. 3,39 1.76 (+), 0.84 NQO2 , NAD(P)H dehydrogenase, quinone 2 Ogawa et al. (2002), 12384933 5,17 2.37 (+), 0.83 CXCL9 , chemokine (C-X-C motif) ligand 9 Fei et al. (1991), 1685512 3,29 1.72 (+), 0.77 HLA-DQA1 , Major histocompatibility complex, class II, DQ alpha 1 n.r.d. 4,86 2.28 (+), 0.89 HLA-DMA , major histocompatibility complex class II, DM alpha n.r.d. 3,10 1.63 (+), 0.85 LCP1 , L plastin, actin binding protein Loiseau et al. (2001), 11423179 5,54 2.47 (+), 0.82 HLA-A , major histocompatibility complex, class I, A n.r.d. d 2,62 1.39 (+), 0.83 RAC2 , ras-related C3 botulinum toxin substrate 2 Azuma et al. (2002), 11947921 3,23 1.69 (+), 0.86 LAPTM5 , Lysosomal associated multispanning membrane protein 5 Previously reported in SS, PMID Gene expression shift (ratio) Gene expression shift (log 2 ) c Direction of correlation, R 2 value b GENE SYMBOL , description
  • 61. Are they chromosomal neighbors? Gene expression phenotype correlation (1) Positively correlated gene expression Negatively correlated gene expression
  • 62. Gene expression phenotype correlation (2) Functional (GO, KEGG, BioCarta) and literature (PubMed) linked genes
  • 63. Strength of correlation respective to transcriptional activity Urzúa et al. (2008) in preparation
  • 64. Correlation between expression profiles and multiple phenotypes Ovarian tumor frequency Number of litters Litter size 89 280 73 0 0 0 145
  • 65. Case # 3 Gene expression profiling in ovarian carcinomas
  • 66. Gene expression differences - IOSE vs EOC III (t-test) actin cytoskeleton   regulation of protein metabolism   blood coagulation   response to wounding   apoptosis  
  • 67. Gene expression differences - IOSE vs EOC III (Anova)
  • 68. NGF signaling pathway and related genes
  • 69. Case # 4 Wine yeast genomics
  • 70.
  • 71. Yeast genome may undergo genomic changes when exposed to the environment S288C v/s S288C S288C v/s S288C EC1118 v/s S288C L-1333 v/s S288C L-957 v/s S288C S288C= cepa estándar de laboratorio EC1118= cepa comercial francesa L-1333= cepa aislada en Casablanca L-957= cepa aislada en Mendoza
  • 72. Case # 5 Norovirus genotyping
  • 73. SNPs in viral genome allow viruses classification
  • 74. Real-time Q-PCR validation Spp1 Mt1 ——  —— 18S rRNA ——  —— Rps16 Urzúa et al. (2006) J. Cell. Physiol. 206, 594-602
  • 75. Real-time Q-PCR validation (2) Urzúa et al. (2008) in preparation
  • 76. Tal como una casa se construye con ladrillos, la ciencia se construye en base a hechos... Pero un conjunto de hechos no constituye por sí sólo ciencia, tal como un montón de ladrillos no constituyen una casa. Henri Poincaré La Science et l'Hypothese, Paris, 1908.
  • 77.
  • 78. Gracias! Dr. Ulises Urzúa [email_address] Fono 978-6877
  • 79. Systems biology integrates different levels of information to understand how biological organisms function. In contrast to molecular biology, systems biology does not break down a system into all of its parts and study one part of the process at a time. Systems biologists argue that this reductionist approach is not robust, either because of nature's redundancy and complexity, or because we have not understood all the parts of the processes. The ultimate goal of systems biology is to mathematically model biological processes. Such models are used to predict how different changes affect the phenotype of a cell, and can be iteratively tested to prove or disprove the model. Adapted from http://en.wikipedia.org/
  • 80. Seminarios 9 de Diciembre, 2008 http://www.ncbi.nlm.nih.gov/pubmed/18596974 http://www.ncbi.nlm.nih.gov/pubmed/17766027