20.309:Presentations: Difference between revisions

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==Oct 10: Nucleic acid technologies==
==Presentation grading guidelines==
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/quake_DNA_processor_NBT.pdf J. W. Hong, ''et al.'' "A nanoliter-scale nucleic acid processor with parallel architecture," Nature Biotech. '''22'''(4): pp. 435-439 (2004).] Tiffany Guo
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/quake_digitalPCR.pdf L Warren, ''et al.'' "Transcription factor profiling in individual hematopoietic progenitors by digital RT-PCR" Proc. Nat. Acad. Sci. 2006.] OR [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/quake_progenitors.pdf E.A. Ottesen ''et al.'' "Microfluidic Digital PCR Enables Multigene Analysis of Individual Environmental Bacteria" Science 2006.]
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/winfree_dna_crystals_NATURE_1998.pdf E. Winfree, ''et al.'' "Design and self-assembly of two-dimensional DNA crystals," Nature '''394'''(6693): pp. 539-544 (1998).] AND [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/rothemund_DNA_shapes_NATURE_2006.pdf P. W. K. Rothemund "Folding DNA to create nanoscale shapes and patterns," Nature '''440'''(7082): pp. 297-302(2006).]; Jerzy Szablowski


==Oct 14 and Oct 24: Optical Microscopy: Imaging==
Presentation grade is worth 10% of your total grade and is divided into the following categories:<br />
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/perlman_science2004.pdf Z. E. Perlman ''et al.'', "Multidimensional Drug Profiling by Automated Microscopy," ''Science'' '''306''' pp. 1194-98 (2004).] Rebecca Adams (Oct. 14)
 
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/axelrod_traffic2002.pdf D. Axelrod, "Total Internal Reflection Fluorescence Microscopy in Cell Biology," ''Traffic '' '''2''' pp. 764-774 (2001).] Roshini Zachariah
Uploading presentation file to wiki 6 hrs before presentation time (25%)<br />
Presentation – clarity, interpretation of paper, organization, etc. (50%)<br />
Attendance at the other two sessions (25%)<br />
<br />
==How to upload your file==
#Go to:http://openwetware.org/wiki/Special:Upload <br />
#In edit mode, add this double bracket phrase after your name in the '''Schedule''' section: [[http://www.openwetware.org/wiki/Image:filename.pptx download]] where filename.pptx is the full name of your presentation file<br />
#Click on download to make sure it works!
==Schedule==
''(please do not make edits to this page except to link your presentation)''
 
'''Thursday, December 8<br />
[[Session A]] ''with Steve Wasserman in 16-336'' <br />
Alicia and Zeina:  [[http://www.openwetware.org/wiki/Image:Kaestli_Siam_Presentation.pptx.pptx download]] " The Frequency Dependence of Osmo-Adaptation in Saccharomyces cerevisiae "<br />
Raven and Omar: [[http://www.openwetware.org/wiki/Image:RavenOmarPresentation-3.ppt download]] "A microengraving method for rapid selection of single cells producing antigen-specific antibodies"<br />
Megan and Xinqi: [[http://www.openwetware.org/wiki/Image:journal_presentation.pptx download]] “Tumor cells caught in the act of invading: their strategy for enhanced cell motility" <br />
 
[[Session B]] ''with Peter So in 4-237'' <br />
Max and Jonathan: [[http://www.openwetware.org/wiki/Image:Wu_Gootenberg_309presentation.pptx download]] " Single-cell NF-kappaB dynamics reveal digital activation and analogue information processing "<br />
Arvind and Samuel [[http://www.openwetware.org/wiki/Image:Arvind_Sam_309finalpresentation.ppt download]]: " The effects of molecular noise and size control on variability in the budding yeast cell cycle" <br />
Leanna and Brigitte: [[http://openwetware.org/images/6/60/JournalClub.pptx download]] “Isolation of rare circulating tumour cells in cancer patients by microchip technology” <br />
<br />
 
'''Friday, December 9'''<br />
[[Session A]] ''with Peter So in 16-336''<br />
Sachin and Yuan: [[http://www.openwetware.org/wiki/Image:Shinde_Zhao_20.309.pptx download]] “DNA nanomechanics allows direct digital detection of complementary DNA and microRNA targets” <br />
Nigel and Vivian: [[http://www.openwetware.org/wiki/Image:Hecht_Chou_ppt.pptx download]]“Towards single-molecule nanomechanical mass spectrometry” <br />
Gabi and Susana: [[http://www.openwetware.org/wiki/Image:Metastasis-1.pptx download]] [[http://openwetware.org/wiki/Image:Metastasis-1-1.pptx download]] (Please pick the 2nd download file) Gupta and Massagué. "Cancer Metastasis: Building a Framework" Cell 2006<br />
Anne and Jenny: "Integrated barcode chips for rapid, multiplexed analysis of proteins in microliter quantities of blood"
<br /> [[http://openwetware.org/wiki/Image:Zhou_Ye_JCPresentation.pptx download]]
[[http://openwetware.org/wiki/Image:Zhou_Ye_JCPresentation.pdf download]]
 
[[Session B]]  ''with Steven Nagle in 4-231''<br />
Shikha and William: [[http://openwetware.org/wiki/Image:20.309FinalPres_%281%29.pptx download]]“Electrical Spiking in Escherichia coli Probed with a Fluorescent Voltage-Indicating Protein” <br />
Brian and Michael: [[http://openwetware.org/wiki/Image:Batista_Carvalho_Final_Presentation.pptx download]] "Geometric control of cell life and death" <br />
Nick and Colin: [[http://www.openwetware.org/wiki/Image:CR_NS_20309_Pres.pptx download]] “Detection of Mutations in EGFR in Circulating Lung-Cancer Cells" <br />
<br />
 
'''Tuesday, December 13'''<br />
[[Session A]]  ''with Scott Manalis in 16-336'' <br />
Ginger and Joseph: [[http://openwetware.org/wiki/Image:Martinez_Yang_Presentation.pptx download]] “Multidimensional Drug Profiling by Automated Microscopy" <br />
Tina: [[http://openwetware.org/wiki/Image:Src_activation_TS.pptx download]]“Visualizing the mechanical activation of Src"  <br />
Jacqueline and Manuel: [[http://openwetware.org/wiki/Image:NETRA_ML_JMS.pptx download]] “NETRA: Interactive Display for Estimating Refractive Errors and Focal Range"  <br />
Jessica: [[http://openwetware.org/wiki/Image:309_Presentation.pptx download]]"Folding DNA to create nanoscale shapes and patterns"
<br />
 
[[Session B]] ''with Steve Wasserman in 4-237''<br />
Sahar and Pablo: [[http://www.openwetware.org/wiki/Image:Sahar_Pablo_309_presentation.pptx download]] “Probing the kinesin reaction cycle with a 2D optical force clamp" <br />
PJ Velez and Pei-Ann: [[http://www.openwetware.org/wiki/Image:LinVelezBrunner.pptx download]] “Diffusion tensor spectroscopy and imaging” <br />
Lisa and Dana [[http://openwetware.org/wiki/Image:Braff_foo_309_presentation.pptx download]]: “Field focusing nuclear magnetic resonance (FONAR): visualization of a tumor in a live animal” <br />
<br />
 
==Single cell analysis==
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/yeast.pdf Mettetal ''et al.'', "The Frequency Dependence of Osmo-Adaptation in Saccharomyces cerevisiae" Science 2008.] [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/yeast_supp.pdf supp info] '''Alicia Kaestli and Zeina Ali Siam'''
#Tay S, Hughey JJ, Lee TK, Lipniacki T, Quake SR, Covert MW. "Single-cell NF-kappaB dynamics reveal digital activation and analogue information processing."Nature. 2010 '''Max Wu and Jonathan Gootenberg'''
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/singlecell/love_2006.pdf Love, ''et al.'', "A microengraving method for rapid selection of single cells producing antigen-specific antibodies" Nature Biotechnology 2006.]  '''Raven Reddy and Omar Abudayyeh. Can't do Dec 6'''
#J. Kralj, D. R. Hochbaum, A. D. Douglass, A. E. Cohen, Electrical Spiking in Escherichia coli Probed with a Fluorescent Voltage-Indicating Protein, Science, 333, 345-348, 2011. Shikha Kaji and William Morejon
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/singlecell/noise_size_yeast_NATURE_2007.pdf Di Talia, ''et al.'', "The effects of molecular noise and size control on variability in the budding yeast cell cycle" Nature 2007.] '''Arvind Thiagarajan'''
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/singlecell/sorger_trail_ntr_2009.pdf Spencer, ''et al.'', "Non-genetic origins of cell-to-cell variability in TRAIL-induced apoptosis" Nature 2009.]
 
==Metastasis and Circulating Tumor Cells==
#Gupta and Massagué. "Cancer Metastasis: Building a Framework" Cell 2006  Gabriella de Paz and Susana S. Hak
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/metastasis/wyckoff_opinion_2005.pdf Nagrath, ''et al.'', "Tumor cells caught in the act of invading: their strategy for enhanced cell motility" TRENDS in Cell Biology 2005.]  Megan Roytman and Xinqi Li
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/metastasis/toner_nature_2007.pdf Nagrath, ''et al.'', "Isolation of rare circulating tumour cells in cancer patients by microchip technology" Nature 2007.] '''-Leanna'''
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/metastasis/haber_NEJM_2008.pdf Maheswaran, ''et al.'', "Detection of Mutations in EGFR in Circulating Lung-Cancer Cells" NEJM 2008.] '''Nick Swenson and Colin "Forizzle" Reisterer'''
 
==Biomolecular detection==
#Fan HC, Wang J, Potanina A, Quake SR. "Whole Genome Molecular Haplotyping of Single Cells" Nature Biotechnology. 2010
#Fordyce PM, Gerber D, Tran D, Zheng J, Li H5, DeRisi JL, Quake SR. "De novo identification and biophysical characterization of transcription-factor binding sites with microfluidic affinity analysis"Nature Biotechnology. 2010 '''-Brigitte'''
#Dong and Sahin, "A nanomechanical interface to rapid single-molecule interactions" Nature Communications 2011.
#A. P. Fields, A. E. Cohen, Electrokinetic trapping at the one nanometer limit, PNAS 2011.
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/winfree_dna_crystals_NATURE_1998.pdf E. Winfree, ''et al.'' "Design and self-assembly of two-dimensional DNA crystals," Nature '''394'''(6693): pp. 539-544 (1998).] OR [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/rothemund_DNA_shapes_NATURE_2006.pdf P. W. K. Rothemund "Folding DNA to create nanoscale shapes and patterns," Nature '''440'''(7082): pp. 297-302(2006).]
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/heath_NTR_BIO_2009.pdf Fan ''et al.'' "Integrated barcode chips for rapid, multiplexed analysis of proteins in microliter quantities of blood," Nature Biotechnology 2008.] '''Jenny Zhou and Anne Ye''' (Date preference: December 6, 9, 8)
#S. Husale, H. HJ. Persson, and O. Sahin, “DNA nanomechanics allows direct digital detection of complementary DNA and microRNA targets” Nature 2009.'''Sachin Shinde and Yuan Zhao'''
#Appleyard et al. "Multiplexed Protein Quantification with Barcoded Hydrogel Microparticles" Analytical Chemistry 2011.
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/roukes_mass_spec_2009.pdf Naik ''et al.'' "Towards single-molecule nanomechanical mass spectrometry," Nature Nanotechnology 2009.]'''Nigel Chou and Vivian Hecht'''
 
==Optical Microscopy: Imaging==
#AR. Lowe, JJ. Siegel, P. Kalab, M. Sui, K. Weis and J. Liphardt, "Selectivity Mechanism of the Nuclear Pore Complex Characterized by Single Cargo Tracking" Nature 2010
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/perlman_science2004.pdf Z. E. Perlman ''et al.'', "Multidimensional Drug Profiling by Automated Microscopy," ''Science'' '''306''' pp. 1194-98 (2004).] '''Joseph Martinez and Jingkun (Ginger) Yang (Can't do 12/6)'''
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/chung_OL2006.pdf E. Chung, D. Kim, and P. T. C. So, "Extended resolution wide-field optical imaging: objective-launched standing-wave total internal reflection fluorescence microscopy," ''Opt. Lett.'' '''31'''(7) pp. 945-7 (2006).]
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/chung_OL2006.pdf E. Chung, D. Kim, and P. T. C. So, "Extended resolution wide-field optical imaging: objective-launched standing-wave total internal reflection fluorescence microscopy," ''Opt. Lett.'' '''31'''(7) pp. 945-7 (2006).]
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/ichimura_apl2004.pdf T. Ichimura ''et al.'', "Application of tip-enhanced microscopy for nonlinear Raman spectroscopy," ''Appl. Phys. Lett.'' '''84'''(10), pp. 1768-70 (2004).]
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/ichimura_apl2004.pdf T. Ichimura ''et al.'', "Application of tip-enhanced microscopy for nonlinear Raman spectroscopy," ''Appl. Phys. Lett.'' '''84'''(10), pp. 1768-70 (2004).]
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/koo_OL2005.pdf T-W. Koo, S. Chan, and A. A. Berlin, "Single-molecule detection of biomolecules by surface-enhanced coherent anti-Stokes Raman scattering," ''Opt. Lett.'' '''30'''(9), pp. 1024-6 (2005).]  
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/koo_OL2005.pdf T-W. Koo, S. Chan, and A. A. Berlin, "Single-molecule detection of biomolecules by surface-enhanced coherent anti-Stokes Raman scattering," ''Opt. Lett.'' '''30'''(9), pp. 1024-6 (2005).]  
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/zhuang_storm.pdf M. J. Rust, M. Bates, X. Zhuang, "Sub-diffraction-limit imaging by stochastic reconstruction optical microscopy (STORM)," Nature Methods 3:793-795 (2006).]
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/zhuang_storm.pdf M. J. Rust, M. Bates, X. Zhuang, "Sub-diffraction-limit imaging by stochastic reconstruction optical microscopy (STORM)," Nature Methods 3:793-795 (2006).]
# Design of Fluorescence Wide Field Microscopy (2 person)
# Design of Fluorescence Wide Field Microscopy
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/NETRA_Paper_309.pdf VF Pamplona, A Mohan, MM Oliveira, R Raskar "NETRA: Interactive Display for Estimating Refractive Errors and Focal Range," Proc. of SIGGRAPH 2010 (ACM Transactions on Graphics 29, 4), 2010.] '''Jacqueline Söegaard and Manuel Legrand'''  [[http://www.openwetware.org/wiki/Image:NETRA_Presentation_ML_JMS_2.pptx download]]


==Nov 14: Nucleic acid technologies II==
==Optical Microscopy: Biomechanics==
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session1/mirkin_barcodes_SCIENCE_2003.pdf J. M. Nam, C. S. Thaxton, C. A. Mirkin "Nanoparticle-based bio-bar codes for the ultrasensitive detection of proteins," Science '''301'''(5641): pp. 1884-1886 (2003).] Qing Han, Becky Kusko
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/block_PNAS2003.pdf S. M. Block ''et al.'', "Probing the kinesin reaction cycle with a 2D optical force clamp," ''PNAS'' '''100'''(5), pp. 2351-56 (2003).]'''Sahar Alkhairy, Pablo'''
#20.309 Lab Module 1 - measuring DNA melting curves
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session2/muller_biomolec_at_work_NTR_2000.pdf A. Engell and D. J. Muller "Observing single biomolecules at work with the atomic force microscope," Nature Stuct. Biol. '''7'''(9): pp. 715-718 (2000).] Rob Warden
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session2/rugar_single_spin.pdf D. Rugar ''et al.'' "Single spin detection by magnetic resonance force microscopy," Nature '''430'''(6997): pp. 329-332 (2004).]Kevin Vogelsang


==Nov 20: Scanning probe microscopy ==
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/verveer_science2000.pdf P. J. Verveer ''et al.'', "Quantitative Imaging of Lateral ErbB1 Receptor Signal Propagation in the Plasma Membrane," ''Science'' '''290''' pp. 1567-70 (2000).]
 
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session2/hansma_hidden_bonds_2006.pdf G. E. Fantner ''et al.'' "Sacrificial bonds and hidden length: Unraveling molecular mesostructures in tough materials" ''Biophys. J'' '''90'''(4): pp. 1411-1418 (2006).]
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session2/van_vliet.pdf SY Lee ''et al.'' "Chemomechanical mapping of ligand-receptor binding kinetics on cells" PNAS 104: pp. 9609-9614 (2007).]Aditya Kohli, Dawn Spelke
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session2/fletcher_leukemia.pdf MJ Rosenbluth, WA. Lam, and DA Fletcher, “Force Microscopy of Nonadherent Cells: A Comparison of Leukemia Cell Deformability” Biophysical Journal 90: pp. 2994-3003 (2006).] Sophie Wong, Aisha Bobb-Semple
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/rousso_PNAS1997.pdf I. Rousso ''et al.'', "Microsecond atomic force sensing of protein conformational dynamics: Implications for the primary light-induced events in bacteriorhodopsin," ''PNAS'' '''94''', pp. 7937-41 (1997).] Matt Gethers, Rosa María Álvarez
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Session2/force_vs_Kd_PNAS.pdf F. Schwesinger ''et al.'' "Unbinding forces of single antibody-antigen complexes correlate with their thermal dissociation rates" PNAS '''97'''(18): pp. 9972-9977 (2000).]  Jen Chao
 
==Nov 25: Optical Microscopy: Biomechanics==
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/block_PNAS2003.pdf S. M. Block ''et al.'', "Probing the kinesin reaction cycle with a 2D optical force clamp," ''PNAS'' '''100'''(5), pp. 2351-56 (2003).] Neil Zimmerman, Vivek Thacker
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/verveer_science2000.pdf P. J. Verveer ''et al.'', "Quantitative Imaging of Lateral ErbB1 Receptor Signal Propagation in the Plasma Membrane," ''Science'' '''290''' pp. 1567-70 (2000).] Jessica Keenan
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/yamada_bj2000.pdf S. Yamada, D. Wirtz, and S. C. Kuo, "Mechanics of Living Cells Measured by Laser Tracking Microrheology," ''Biophys. J'' '''78'''(4), pp. 1736-47 (2000).]
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/yamada_bj2000.pdf S. Yamada, D. Wirtz, and S. C. Kuo, "Mechanics of Living Cells Measured by Laser Tracking Microrheology," ''Biophys. J'' '''78'''(4), pp. 1736-47 (2000).]
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/yap_JAP2005.pdf B. Yap and R. D. Kamm, "Cytoskeletal remodeling and cellular activation during deformation of neutrophils into narrow channels," ''J Appl. Physiol.'' '''99''', pp. 2323-30 (2005).]YW
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/yap_JAP2005.pdf B. Yap and R. D. Kamm, "Cytoskeletal remodeling and cellular activation during deformation of neutrophils into narrow channels," ''J Appl. Physiol.'' '''99''', pp. 2323-30 (2005).] '''Samuel Acquah'''
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/crocker_PRL2000.pdf J. C. Crocker ''et al.'', "Two-Point Microrheology of Inhomogeneous Soft Materials," ''Phys. Rev. Lett.'' '''85'''(4), pp. 888-91 (2000).]
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/crocker_PRL2000.pdf J. C. Crocker ''et al.'', "Two-Point Microrheology of Inhomogeneous Soft Materials," ''Phys. Rev. Lett.'' '''85'''(4), pp. 888-91 (2000).]
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/chen_science1997.pdf C. S. Chen ''et al.'', "Geometric control of cell life and death," ''Science'' '''276''' pp. 1425-28 (1997).]Jen Logan, Vivian Hernandez
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/chen_science1997.pdf C. S. Chen ''et al.'', "Geometric control of cell life and death," ''Science'' '''276''' pp. 1425-28 (1997).] '''Brian Carvalho + Michael Batista'''
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/wang_nature2005.pdf Y. Wang ''et al.'', "Visualizing the mechanical activation of Src," ''Nature'' '''434''', pp. 1040-45 (2005).] Thomas Martinez
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/wang_nature2005.pdf Y. Wang ''et al.'', "Visualizing the mechanical activation of Src," ''Nature'' '''434''', pp. 1040-45 (2005).] '''Tina Stutzman, Can't do Dec. 8th '''


==Dec 9: Optical Trapping and 3D Imaging==
==Optical Trapping and 3D Imaging==
#[http://web.mit.edu/~langlab/Publications/ASKhalil-etal(2007).pdf Khalil, A.S., ''et al.'', "Single M13 bacteriophage tethering and stretching." ''Proceedings of the National Academy of Sciences'' '''104''', pp. 4892-4897 (2007).]
#[http://www.pnas.org/content/104/12/4892.full.pdf Khalil, A.S., ''et al.'', "Single M13 bacteriophage tethering and stretching." ''Proceedings of the National Academy of Sciences'' '''104''', pp. 4892-4897 (2007).] - Pablo
#[http://stacks.iop.org/JOptA/9/S103 Brau, R.R., ''et al.,'' "Passive and active microrheology with optical tweezers." ''Journal of Optics A: Pure and Applied Optics'' '''9''', pp. S103-S112 (2007).] Dylan Roden
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/axelrod_traffic2002.pdf D. Axelrod, "Total Internal Reflection Fluorescence Microscopy in Cell Biology," ''Traffic '' '''2''' pp. 764-774 (2001).]  
#[http://www.physics.berkeley.edu/research/liphardt/pdfs/probe.pdf Y. Nakayama, ''et al.'', "Tunable nanowire nonlinear optical probe."  ''Nature'' '''447''', pp. 1098-1101 (2007).]
#[http://stacks.iop.org/JOptA/9/S103 Brau, R.R., ''et al.,'' "Passive and active microrheology with optical tweezers." ''Journal of Optics A: Pure and Applied Optics'' '''9''', pp. S103-S112 (2007).]
#[http://www.physics.berkeley.edu/research/liphardt/pdfs/EColi.pdf JM. Walter, ''et al.'', "Light-powering Escherichia coli with proteorhodopsin" ''Proceedings of the National Academy of Sciences'' '''104''', pp. 2408–2412 (2007).] Stephanie Nix, Kate B
#[http://www.physics.berkeley.edu/research/liphardt/pdfs/probe.pdf Y. Nakayama, ''et al.'', "Tunable nanowire nonlinear optical probe."  ''Nature'' '''447''', pp. 1098-1101 (2007).]  
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/miller_science2002.pdf M. J. Miller ''et al.'', "Two-Photon Imaging of Lymphocyte Motility and Antigen Response in Intact Lymph Node," ''Science'' '''296''' pp. 1869-73 (2002).] Luis Somoza
#[http://www.physics.berkeley.edu/research/liphardt/pdfs/EColi.pdf JM. Walter, ''et al.'', "Light-powering Escherichia coli with proteorhodopsin" ''Proceedings of the National Academy of Sciences'' '''104''', pp. 2408–2412 (2007).]  
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/miller_science2002.pdf M. J. Miller ''et al.'', "Two-Photon Imaging of Lymphocyte Motility and Antigen Response in Intact Lymph Node," ''Science'' '''296''' pp. 1869-73 (2002).]
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/wang_bj2005.pdf H. Wang ''et al.'', "Coherent Anti-Stokes Raman Scattering Imaging of Axonal Myelin in Live Spinal Tissues," ''Biophys. J'' '''89'''(1), pp. 581-91 (2005).]
#[http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/wang_bj2005.pdf H. Wang ''et al.'', "Coherent Anti-Stokes Raman Scattering Imaging of Axonal Myelin in Live Spinal Tissues," ''Biophys. J'' '''89'''(1), pp. 581-91 (2005).]
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/hanson_BJ2002.pdf K. M. Hanson ''et al.'', "Two-Photon Fluorescence Lifetime Imaging of the Skin Stratum Corneum pH Gradient" ''Biophys. J'' '''83'''(3) pp. 1682-90 (2002).]
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/hanson_BJ2002.pdf K. M. Hanson ''et al.'', "Two-Photon Fluorescence Lifetime Imaging of the Skin Stratum Corneum pH Gradient" ''Biophys. J'' '''83'''(3) pp. 1682-90 (2002).]
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/campagnola_BJ2002.pdf P. J. Campagnola ''et al.'', "Three-Dimensional High-Resolution Second-Harmonic Generation Imaging of Endogenous Structural Proteins in Biological Tissues," ''Biophys. J'' '''81'''(1) pp. 493-508 (2002).] Juliana Rotter
# [http://www.media.mit.edu/nanoscale/courses/BE309/private/Presentations/Sessions345/campagnola_BJ2002.pdf P. J. Campagnola ''et al.'', "Three-Dimensional High-Resolution Second-Harmonic Generation Imaging of Endogenous Structural Proteins in Biological Tissues," ''Biophys. J'' '''81'''(1) pp. 493-508 (2002).]
#[http://www.pnas.org/cgi/reprint/0611180104v1 Muller cells are living optical fibers in the vertebrate retina, Franze, et. al]
#[http://www.biophysj.org/cgi/reprint/81/2/767 The Optical Stretcher: A Novel Laser Tool to Micromanipulate Cells, Guck, et. al]
 
==Magnetic Resonance Imaging and Contrast==
#[http://www.ncbi.nlm.nih.gov/pubmed/8130344 Basser PJ, Mattiello J, LeBihan D, “Diffusion tensor spectroscopy and imaging,” Biophys J 1994.]
#[http://www.ncbi.nlm.nih.gov/pubmed/19225521 Brunner et al, “Travelling-wave nuclear magnetic resonance,” Nature 2009.]  '''PJ Velez and Pei-Ann Lin'''
#[http://www.ncbi.nlm.nih.gov/pubmed/1006309 Damadian R et al, “Field focusing nuclear magnetic resonance (FONAR): visualization of a tumor in a live animal,” Science 1976.] '''Lisa Foo and Dana Braff'''
#[http://www.ncbi.nlm.nih.gov/pubmed/15988521 Gleich B & Weizenecker J, “Tomographic imaging using the nonlinear response of magnetic particles,” Nature 2005.]
#[http://www.ncbi.nlm.nih.gov/pubmed/2124706 Ogawa S et al, “Brain magnetic resonance imaging with contrast dependent on blood oxygenation,” Proc Natl Acad Sci USA 1990.]
#[http://www.ncbi.nlm.nih.gov/pubmed/15254532 Rugar D et al, “Single spin detection by magnetic resonance force microscopy,” Nature 2004.]
#[http://www.ncbi.nlm.nih.gov/pubmed/12872167 Zhou J et al, “Using the amide proton signals of intracellular proteins and peptides to detect pH effects in MRI,” Nat Med.]
 
==Molecular Imaging with MRI==
#[http://www.ncbi.nlm.nih.gov/pubmed/16041364 Ahrens ET et al, “In vivo imaging platform for tracking immunotherapeutic cells,” Nat Biotechnol 2005.]
#[http://www.ncbi.nlm.nih.gov/pubmed/12930897 Ardenkjaer-Larsen JH et al, “Increase in signal-to-noise ratio of > 10,000 times in liquid-state NMR,” Proc Natl Acad Sci USA 2003.]
#[http://www.ncbi.nlm.nih.gov/pubmed/17351627 Cohen B et al, “MRI detection of transcriptional regulation of gene expression in transgenic mice,” Nat Med 2007.] Derek Ju and John Kucharczyk
#[http://www.ncbi.nlm.nih.gov/pubmed/9339438 Lin YJ & Koretsky AP, “Manganese ion enhances T1-weighted MRI during brain activation: an approach to direct imaging of brain function,” Magn Reson Med 1997.]
#[http://www.ncbi.nlm.nih.gov/pubmed/10700150 Louie AY et al, “In vivo visualization of gene expression using magnetic resonance imaging,” Nat Biotechnol 2000.]
#[http://www.ncbi.nlm.nih.gov/pubmed/15768036 Higuchi M et al, “19F and 1H MRI detection of amyloid beta plaques in vivo,” Nat Neurosci 2005.]


=='''PRESENTATION GUIDELINES'''==
=='''PRESENTATION GUIDELINES'''==
Presentation time should be 10 minutes (it's very important that you do not go over this time). We will have 5 minutes for questions and discussion.  It's also important that all non-presenters read the papers carefully before the session as this will make the discussion much more interesting.
Presentation time should be 10 minutes (it's very important that you do not go over this time). We will have 2-3 minutes for questions and discussion.  It's also important that all non-presenters read the papers carefully before the session as this will make the discussion much more interesting.
   
   
Your presentation should provide background to motivate why the research was conducted, describe the key results of the paper (not necessarily all of the results) and the essence of the measurement method, and explain the significance of the results to the general field.  Remember that 10 minutes will not be nearly enough time to discuss every aspect of the paper so you will need to identify the most important aspects to include in your presentation.
Your presentation should provide background to motivate why the research was conducted, describe the key results of the paper (not necessarily all of the results) and the essence of the measurement method, and explain the significance of the results to the general field.  Remember that 10 minutes will not be nearly enough time to discuss every aspect of the paper so you will need to identify the most important aspects to include in your presentation.

Latest revision as of 03:09, 13 December 2011

20.309: Biological Instrumentation and Measurement

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Presentation grading guidelines

Presentation grade is worth 10% of your total grade and is divided into the following categories:

Uploading presentation file to wiki 6 hrs before presentation time (25%)
Presentation – clarity, interpretation of paper, organization, etc. (50%)
Attendance at the other two sessions (25%)

How to upload your file

  1. Go to:http://openwetware.org/wiki/Special:Upload
  2. In edit mode, add this double bracket phrase after your name in the Schedule section: [download] where filename.pptx is the full name of your presentation file
  3. Click on download to make sure it works!

Schedule

(please do not make edits to this page except to link your presentation)

Thursday, December 8
Session A with Steve Wasserman in 16-336
Alicia and Zeina: [download] " The Frequency Dependence of Osmo-Adaptation in Saccharomyces cerevisiae "
Raven and Omar: [download] "A microengraving method for rapid selection of single cells producing antigen-specific antibodies"
Megan and Xinqi: [download] “Tumor cells caught in the act of invading: their strategy for enhanced cell motility"

Session B with Peter So in 4-237
Max and Jonathan: [download] " Single-cell NF-kappaB dynamics reveal digital activation and analogue information processing "
Arvind and Samuel [download]: " The effects of molecular noise and size control on variability in the budding yeast cell cycle"
Leanna and Brigitte: [download] “Isolation of rare circulating tumour cells in cancer patients by microchip technology”

Friday, December 9
Session A with Peter So in 16-336
Sachin and Yuan: [download] “DNA nanomechanics allows direct digital detection of complementary DNA and microRNA targets”
Nigel and Vivian: [download]“Towards single-molecule nanomechanical mass spectrometry”
Gabi and Susana: [download] [download] (Please pick the 2nd download file) Gupta and Massagué. "Cancer Metastasis: Building a Framework" Cell 2006
Anne and Jenny: "Integrated barcode chips for rapid, multiplexed analysis of proteins in microliter quantities of blood"
[download] [download]

Session B with Steven Nagle in 4-231
Shikha and William: [download]“Electrical Spiking in Escherichia coli Probed with a Fluorescent Voltage-Indicating Protein”
Brian and Michael: [download] "Geometric control of cell life and death"
Nick and Colin: [download] “Detection of Mutations in EGFR in Circulating Lung-Cancer Cells"

Tuesday, December 13
Session A with Scott Manalis in 16-336
Ginger and Joseph: [download] “Multidimensional Drug Profiling by Automated Microscopy"
Tina: [download]“Visualizing the mechanical activation of Src"
Jacqueline and Manuel: [download] “NETRA: Interactive Display for Estimating Refractive Errors and Focal Range"
Jessica: [download]"Folding DNA to create nanoscale shapes and patterns"

Session B with Steve Wasserman in 4-237
Sahar and Pablo: [download] “Probing the kinesin reaction cycle with a 2D optical force clamp"
PJ Velez and Pei-Ann: [download] “Diffusion tensor spectroscopy and imaging”
Lisa and Dana [download]: “Field focusing nuclear magnetic resonance (FONAR): visualization of a tumor in a live animal”

Single cell analysis

  1. Mettetal et al., "The Frequency Dependence of Osmo-Adaptation in Saccharomyces cerevisiae" Science 2008. supp info Alicia Kaestli and Zeina Ali Siam
  2. Tay S, Hughey JJ, Lee TK, Lipniacki T, Quake SR, Covert MW. "Single-cell NF-kappaB dynamics reveal digital activation and analogue information processing."Nature. 2010 Max Wu and Jonathan Gootenberg
  3. Love, et al., "A microengraving method for rapid selection of single cells producing antigen-specific antibodies" Nature Biotechnology 2006. Raven Reddy and Omar Abudayyeh. Can't do Dec 6
  4. J. Kralj, D. R. Hochbaum, A. D. Douglass, A. E. Cohen, Electrical Spiking in Escherichia coli Probed with a Fluorescent Voltage-Indicating Protein, Science, 333, 345-348, 2011. Shikha Kaji and William Morejon
  5. Di Talia, et al., "The effects of molecular noise and size control on variability in the budding yeast cell cycle" Nature 2007. Arvind Thiagarajan
  6. Spencer, et al., "Non-genetic origins of cell-to-cell variability in TRAIL-induced apoptosis" Nature 2009.

Metastasis and Circulating Tumor Cells

  1. Gupta and Massagué. "Cancer Metastasis: Building a Framework" Cell 2006 Gabriella de Paz and Susana S. Hak
  2. Nagrath, et al., "Tumor cells caught in the act of invading: their strategy for enhanced cell motility" TRENDS in Cell Biology 2005. Megan Roytman and Xinqi Li
  3. Nagrath, et al., "Isolation of rare circulating tumour cells in cancer patients by microchip technology" Nature 2007. -Leanna
  4. Maheswaran, et al., "Detection of Mutations in EGFR in Circulating Lung-Cancer Cells" NEJM 2008. Nick Swenson and Colin "Forizzle" Reisterer

Biomolecular detection

  1. Fan HC, Wang J, Potanina A, Quake SR. "Whole Genome Molecular Haplotyping of Single Cells" Nature Biotechnology. 2010
  2. Fordyce PM, Gerber D, Tran D, Zheng J, Li H5, DeRisi JL, Quake SR. "De novo identification and biophysical characterization of transcription-factor binding sites with microfluidic affinity analysis"Nature Biotechnology. 2010 -Brigitte
  3. Dong and Sahin, "A nanomechanical interface to rapid single-molecule interactions" Nature Communications 2011.
  4. A. P. Fields, A. E. Cohen, Electrokinetic trapping at the one nanometer limit, PNAS 2011.
  5. E. Winfree, et al. "Design and self-assembly of two-dimensional DNA crystals," Nature 394(6693): pp. 539-544 (1998). OR P. W. K. Rothemund "Folding DNA to create nanoscale shapes and patterns," Nature 440(7082): pp. 297-302(2006).
  6. Fan et al. "Integrated barcode chips for rapid, multiplexed analysis of proteins in microliter quantities of blood," Nature Biotechnology 2008. Jenny Zhou and Anne Ye (Date preference: December 6, 9, 8)
  7. S. Husale, H. HJ. Persson, and O. Sahin, “DNA nanomechanics allows direct digital detection of complementary DNA and microRNA targets” Nature 2009.Sachin Shinde and Yuan Zhao
  8. Appleyard et al. "Multiplexed Protein Quantification with Barcoded Hydrogel Microparticles" Analytical Chemistry 2011.
  9. Naik et al. "Towards single-molecule nanomechanical mass spectrometry," Nature Nanotechnology 2009.Nigel Chou and Vivian Hecht

Optical Microscopy: Imaging

  1. AR. Lowe, JJ. Siegel, P. Kalab, M. Sui, K. Weis and J. Liphardt, "Selectivity Mechanism of the Nuclear Pore Complex Characterized by Single Cargo Tracking" Nature 2010
  2. Z. E. Perlman et al., "Multidimensional Drug Profiling by Automated Microscopy," Science 306 pp. 1194-98 (2004). Joseph Martinez and Jingkun (Ginger) Yang (Can't do 12/6)
  3. E. Chung, D. Kim, and P. T. C. So, "Extended resolution wide-field optical imaging: objective-launched standing-wave total internal reflection fluorescence microscopy," Opt. Lett. 31(7) pp. 945-7 (2006).
  4. T. Ichimura et al., "Application of tip-enhanced microscopy for nonlinear Raman spectroscopy," Appl. Phys. Lett. 84(10), pp. 1768-70 (2004).
  5. T-W. Koo, S. Chan, and A. A. Berlin, "Single-molecule detection of biomolecules by surface-enhanced coherent anti-Stokes Raman scattering," Opt. Lett. 30(9), pp. 1024-6 (2005).
  6. M. J. Rust, M. Bates, X. Zhuang, "Sub-diffraction-limit imaging by stochastic reconstruction optical microscopy (STORM)," Nature Methods 3:793-795 (2006).
  7. Design of Fluorescence Wide Field Microscopy
  8. VF Pamplona, A Mohan, MM Oliveira, R Raskar "NETRA: Interactive Display for Estimating Refractive Errors and Focal Range," Proc. of SIGGRAPH 2010 (ACM Transactions on Graphics 29, 4), 2010. Jacqueline Söegaard and Manuel Legrand [download]

Optical Microscopy: Biomechanics

  1. S. M. Block et al., "Probing the kinesin reaction cycle with a 2D optical force clamp," PNAS 100(5), pp. 2351-56 (2003).Sahar Alkhairy, Pablo
  1. P. J. Verveer et al., "Quantitative Imaging of Lateral ErbB1 Receptor Signal Propagation in the Plasma Membrane," Science 290 pp. 1567-70 (2000).
  2. S. Yamada, D. Wirtz, and S. C. Kuo, "Mechanics of Living Cells Measured by Laser Tracking Microrheology," Biophys. J 78(4), pp. 1736-47 (2000).
  3. B. Yap and R. D. Kamm, "Cytoskeletal remodeling and cellular activation during deformation of neutrophils into narrow channels," J Appl. Physiol. 99, pp. 2323-30 (2005). Samuel Acquah
  4. J. C. Crocker et al., "Two-Point Microrheology of Inhomogeneous Soft Materials," Phys. Rev. Lett. 85(4), pp. 888-91 (2000).
  5. C. S. Chen et al., "Geometric control of cell life and death," Science 276 pp. 1425-28 (1997). Brian Carvalho + Michael Batista
  6. Y. Wang et al., "Visualizing the mechanical activation of Src," Nature 434, pp. 1040-45 (2005). Tina Stutzman, Can't do Dec. 8th

Optical Trapping and 3D Imaging

  1. Khalil, A.S., et al., "Single M13 bacteriophage tethering and stretching." Proceedings of the National Academy of Sciences 104, pp. 4892-4897 (2007). - Pablo
  2. D. Axelrod, "Total Internal Reflection Fluorescence Microscopy in Cell Biology," Traffic 2 pp. 764-774 (2001).
  3. Brau, R.R., et al., "Passive and active microrheology with optical tweezers." Journal of Optics A: Pure and Applied Optics 9, pp. S103-S112 (2007).
  4. Y. Nakayama, et al., "Tunable nanowire nonlinear optical probe." Nature 447, pp. 1098-1101 (2007).
  5. JM. Walter, et al., "Light-powering Escherichia coli with proteorhodopsin" Proceedings of the National Academy of Sciences 104, pp. 2408–2412 (2007).
  6. M. J. Miller et al., "Two-Photon Imaging of Lymphocyte Motility and Antigen Response in Intact Lymph Node," Science 296 pp. 1869-73 (2002).
  7. H. Wang et al., "Coherent Anti-Stokes Raman Scattering Imaging of Axonal Myelin in Live Spinal Tissues," Biophys. J 89(1), pp. 581-91 (2005).
  8. K. M. Hanson et al., "Two-Photon Fluorescence Lifetime Imaging of the Skin Stratum Corneum pH Gradient" Biophys. J 83(3) pp. 1682-90 (2002).
  9. P. J. Campagnola et al., "Three-Dimensional High-Resolution Second-Harmonic Generation Imaging of Endogenous Structural Proteins in Biological Tissues," Biophys. J 81(1) pp. 493-508 (2002).
  10. Muller cells are living optical fibers in the vertebrate retina, Franze, et. al
  11. The Optical Stretcher: A Novel Laser Tool to Micromanipulate Cells, Guck, et. al

Magnetic Resonance Imaging and Contrast

  1. Basser PJ, Mattiello J, LeBihan D, “Diffusion tensor spectroscopy and imaging,” Biophys J 1994.
  2. Brunner et al, “Travelling-wave nuclear magnetic resonance,” Nature 2009. PJ Velez and Pei-Ann Lin
  3. Damadian R et al, “Field focusing nuclear magnetic resonance (FONAR): visualization of a tumor in a live animal,” Science 1976. Lisa Foo and Dana Braff
  4. Gleich B & Weizenecker J, “Tomographic imaging using the nonlinear response of magnetic particles,” Nature 2005.
  5. Ogawa S et al, “Brain magnetic resonance imaging with contrast dependent on blood oxygenation,” Proc Natl Acad Sci USA 1990.
  6. Rugar D et al, “Single spin detection by magnetic resonance force microscopy,” Nature 2004.
  7. Zhou J et al, “Using the amide proton signals of intracellular proteins and peptides to detect pH effects in MRI,” Nat Med.

Molecular Imaging with MRI

  1. Ahrens ET et al, “In vivo imaging platform for tracking immunotherapeutic cells,” Nat Biotechnol 2005.
  2. Ardenkjaer-Larsen JH et al, “Increase in signal-to-noise ratio of > 10,000 times in liquid-state NMR,” Proc Natl Acad Sci USA 2003.
  3. Cohen B et al, “MRI detection of transcriptional regulation of gene expression in transgenic mice,” Nat Med 2007. Derek Ju and John Kucharczyk
  4. Lin YJ & Koretsky AP, “Manganese ion enhances T1-weighted MRI during brain activation: an approach to direct imaging of brain function,” Magn Reson Med 1997.
  5. Louie AY et al, “In vivo visualization of gene expression using magnetic resonance imaging,” Nat Biotechnol 2000.
  6. Higuchi M et al, “19F and 1H MRI detection of amyloid beta plaques in vivo,” Nat Neurosci 2005.

PRESENTATION GUIDELINES

Presentation time should be 10 minutes (it's very important that you do not go over this time). We will have 2-3 minutes for questions and discussion. It's also important that all non-presenters read the papers carefully before the session as this will make the discussion much more interesting.

Your presentation should provide background to motivate why the research was conducted, describe the key results of the paper (not necessarily all of the results) and the essence of the measurement method, and explain the significance of the results to the general field. Remember that 10 minutes will not be nearly enough time to discuss every aspect of the paper so you will need to identify the most important aspects to include in your presentation.

Make sure to upload a Powerpoint or PDF file of your presentation the day before the meeting so that we can use only one computer to avoid connection problems.

Feel free to see 20.309 staff outside of class to discuss any questions or ideas that you might have about the paper.