The Laser Microbeam and Medical Program (LAMMP), is dedicated to the use of lasers and optics in Biology and Medicine. LAMMP is located within the Beckman Laser Institute and Medical Clinic, an interdisciplinary biomedical research, teaching, and clinical facility at the University of California, Irvine. LAMMP activities span from basic science and technology development to clinical translational research. This is accomplished by combining state of the art Biophotonics technologies with specialized resource facilities for cell and tissue engineering, histopathology, pre-clinical animal models, and clinica care. LAMMP programs include Biophotonics modeling and technology development, basic science studies, instrument prototyping, and device testing in humans and animal models. Because of our facilities, resources, and expertise, we are able to rapidly move new concepts and technologies from blackboard to bench-top to bedside. In this seventh renewal application of LAMMP, we continue to transform our center by advancing several new technologies and high-impact collaborations. We propose to consolidate our activities into 4 major areas of Technology Research and Development (TR&D): Virtual Photonics Technologies (VPT), Microscopy and Microbeam Technologies (MMT), Multimodality Endoscopic Technologies (MET), and Diffuse Optics Technologies (DOT).
Specific Aims are proposed for each TR&D core that will result in the development of several state-of-the-art technologies, instruments, and computational methods. Together, the four TR&D cores contain complementary, inter-dependent approaches for quantitatively characterizing, imaging, and perturbing structure and biochemical function in cells and tissues with scalable resolution and depth sensitivity ranging from micrometers to centimeters. Our broad goal is to advance these technologies through collaboration, service, training, and dissemination activities so they become widely-available, enabling methods for solving important problems in Biology and Medicine.

Public Health Relevance

LAMMP basic science and technology discoveries are developed in a multidisciplinary environment and rapidly moved from blackboard to bench-top to bedside. New methods and devices are proposed that have direct relevance in detecting and treating cancer, vascular and neurologic diseases, and metabolic disorders, as well as providing new insights on fundamental biological processes, such as mechano-transduction, wound repair, angiogenesis, and cell death.

Agency
National Institute of Health (NIH)
Institute
National Institute of Biomedical Imaging and Bioengineering (NIBIB)
Type
Biotechnology Resource Grants (P41)
Project #
5P41EB015890-38
Application #
9250133
Study Section
Special Emphasis Panel (ZEB1-OSR-C (J1)P)
Program Officer
Shabestari, Behrouz
Project Start
1997-04-21
Project End
2018-03-31
Budget Start
2017-04-01
Budget End
2018-03-31
Support Year
38
Fiscal Year
2017
Total Cost
$900,118
Indirect Cost
$317,517
Name
University of California Irvine
Department
Surgery
Type
Schools of Medicine
DUNS #
046705849
City
Irvine
State
CA
Country
United States
Zip Code
92617
Lin, Jessica; Saknite, Inga; Valdebran, Manuel et al. (2018) Feature characterization of scarring and non-scarring types of alopecia by multiphoton microscopy. Lasers Surg Med :
Verdel, Nina; Lentsch, Griffin; Balu, Mihaela et al. (2018) Noninvasive assessment of skin structure by combined photothermal radiometry and optical spectroscopy: coregistration with multiphoton microscopy. Appl Opt 57:D117-D122
Hou, Jue; Williams, Joshua; Botvinick, Elliot L et al. (2018) Visualization of Breast Cancer Metabolism Using Multimodal Nonlinear Optical Microscopy of Cellular Lipids and Redox State. Cancer Res 78:2503-2512
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Hanninen, Adam M; Prince, Richard C; Ramos, Raul et al. (2018) High-resolution infrared imaging of biological samples with third-order sum-frequency generation microscopy. Biomed Opt Express 9:4807-4817
Saidian, Mayer; Lakey, Jonathan R T; Ponticorvo, Adrien et al. (2018) Characterisation of impaired wound healing in a preclinical model of induced diabetes using wide-field imaging and conventional immunohistochemistry assays. Int Wound J :
Horan, Sean T; Gardner, Adam R; Saager, Rolf et al. (2018) Recovery of layered tissue optical properties from spatial frequency-domain spectroscopy and a deterministic radiative transport solver. J Biomed Opt 24:1-11
Lentsch, Griffin; Balu, Mihaela; Koenig, Karsten et al. (2018) In vivo multiphoton microscopy of scabies. JAAD Case Rep 4:985-987
Saager, Rolf B; Baldado, Melissa L; Rowland, Rebecca A et al. (2018) Method using in vivo quantitative spectroscopy to guide design and optimization of low-cost, compact clinical imaging devices: emulation and evaluation of multispectral imaging systems. J Biomed Opt 23:1-12
Kim, Chang Soo; Ingato, Dominique; Wilder-Smith, Petra et al. (2018) Stimuli-disassembling gold nanoclusters for diagnosis of early stage oral cancer by optical coherence tomography. Nano Converg 5:3

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