This Resource develops and uses Multi-isotope Imaging Mass Spectrometry (MIMS), the combination of a novel type of secondary ion mass spectrometer with tracer methods and intensive quantitative image analysis. MIMS provides high mass separation (M/AM >10,000) at high secondary ion transmission, high spatial ?esolution (35 nm) and has the unique capability of simultaneously recording several atomic mass images. Of the utmost importance, MIMS makes it possible for the first time, at the intracellular level, to simultaneously image the distribution and measure the accumulation of molecules labeled with any isotopes, in particular with stable isotopes, for example 15N. Thus, MIMS allows one to study the localization, the accumulation and the turnover of proteins, fatty acids, sugars and foreign molecules in cellular micro domains;the expression and distribution of DMA and RNA;the migration of donor cells to receiver niches, the nesting of stem cell and the intracellular localization of drugs. Finally, the use of stable isotopes opens a world of labeling possibilities that should revive and expand the use of tracers in humans. The Resource collaborates with researchers in cell biology, pathology, biochemistry, immunology, transplantation, pharmacology, stem cell research, microbiology and virology. Development of an iodine negative primary ion source will open subcellular isotope ratio imaging of secondary positive ions, in particular the experimental use of the multiple stable isotopes of calcium to dissect the function of this essential and ubiquitous intracellular agent, and the quantitative imaging of metallo-enzymes. Study of secondary ion formation will guide labeling schemes. Development of automation will allow us to perform complex analyzes 24/7, decomposing a cell from top to bottom in a succession of hundreds of quantitative atomic mass images, each obtained from the sputtering of a few atomic layers. Powerful software will allow us to rapidly extract and reduce quantitative information from reams of data and in a 3D space. Development of methods for long term labeling of cellular DMA will directly benefit immunology, transplantation, stem cell and cancer research. We will train users by organizing yearly workshop on the theory and practice of MIMS and a workshop on the use of the MIMS data reduction software. We will continue to accumulate on the Resource website information spanning all our procedures, results and happenings. We will make of our Web Site a centralized repository for ourselves and the community of users. This Resource is developing multi-isotope imaging mass spectrometry (MIMS), a new technology that makes it possible to image and quantify molecules within individual mammalian or bacterial cells. Called 'an imaging revolution1 as quoted by J. Weitzman (2006, J. Biol. 5:16), MIMS will help solving intractable problems in all fields of biomedical research.

Agency
National Institute of Health (NIH)
Institute
National Institute of Biomedical Imaging and Bioengineering (NIBIB)
Type
Biotechnology Resource Grants (P41)
Project #
3P41EB001974-09S1
Application #
7777134
Study Section
Special Emphasis Panel (ZRG1-BCMB-N (40))
Program Officer
Mclaughlin, Alan Charles
Project Start
2003-09-01
Project End
2013-08-31
Budget Start
2009-03-01
Budget End
2009-08-31
Support Year
9
Fiscal Year
2009
Total Cost
$55,000
Indirect Cost
Name
Brigham and Women's Hospital
Department
Type
DUNS #
030811269
City
Boston
State
MA
Country
United States
Zip Code
02115
Lozi?, Ivan; Hartz, Richard V; Bartlett, Carole A et al. (2016) Characterization of polymeric nanoparticles for treatment of partial injury to the central nervous system. Data Brief 7:152-156
Renslow, Ryan S; Lindemann, Stephen R; Cole, Jessica K et al. (2016) Quantifying element incorporation in multispecies biofilms using nanoscale secondary ion mass spectrometry image analysis. Biointerphases 11:02A322
Drummond, Meghan C; Barzik, Melanie; Bird, Jonathan E et al. (2015) Live-cell imaging of actin dynamics reveals mechanisms of stereocilia length regulation in the inner ear. Nat Commun 6:6873
Bailey, Andrew P; Koster, Grielof; Guillermier, Christelle et al. (2015) Antioxidant Role for Lipid Droplets in a Stem Cell Niche of Drosophila. Cell 163:340-53
Kojima, Toru; Yamada, Hiromi; Isobe, Mitsuru et al. (2014) Compositional changes of human hair melanin resulting from bleach treatment investigated by nanoscale secondary ion mass spectrometry. Skin Res Technol 20:416-21
Guillermier, Christelle; Steinhauser, Matthew L; Lechene, Claude P (2014) Quasi-simultaneous acquisition of nine secondary ions with seven detectors on NanoSIMS50L: application to biological samples. Surf Interface Anal 46:150-153
Enikolopov, G; Guillermier, C; Wang, M et al. (2014) Brain stem cell division and maintenance studied using multi-isotope imaging mass spectrometry (MIMS). Surf Interface Anal 46:140-143
Thiery-Lavenant, G; Guillermier, C; Wang, M et al. (2014) Detection of immunolabels with multi-isotope imaging mass spectrometry (MIMS). Surf Interface Anal 46:147-149
Saiardi, A; Guillermier, C; Loss, O et al. (2014) Quantitative imaging of inositol distribution in yeast using multi-isotope imaging mass spectrometry (MIMS). Surf Interface Anal 46:169-172
Steinhauser, Matthew L; Guillermier, Christelle; Wang, Mei et al. (2014) Approaches to increasing analytical throughput of human samples with multi-isotope imaging mass spectrometry. Surf Interface Anal 46:165-168

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