Two-photon synthetic aperture microscopy for minimally invasive fast 3D imaging of native subcellular behaviors in deep tissue
暂无分享,去创建一个
Jiamin Wu | Xinyang Li | Qionghai Dai | Yiliang Zhou | Jiayin Zhao | Zhi Lu | Yeyi Cai | Hai Qi | Zhifeng Zhao | Jing He | Jingtao Fan | Zilin Wang | Bo Liu | Jiayin Zhao
[1] Jiamin Wu,et al. Multi-focus light-field microscopy for high-speed large-volume imaging , 2022, PhotoniX.
[2] Y. Li,et al. Monocytes deposit migrasomes to promote embryonic angiogenesis , 2022, Nature Cell Biology.
[3] Jiamin Wu,et al. An integrated imaging sensor for aberration-corrected 3D photography , 2022, Nature.
[4] Jiamin Wu,et al. Real-time denoising enables high-sensitivity fluorescence time-lapse imaging beyond the shot-noise limit , 2022, Nature Biotechnology.
[5] D. Schreiner,et al. Specification of CNS macrophage subsets occurs postnatally in defined niches , 2022, Nature.
[6] Lani F. Wu,et al. Integrative spatial analysis of cell morphologies and transcriptional states with MUSE , 2022, Nature Biotechnology.
[7] G. F. Calvo,et al. Behavioural immune landscapes of inflammation , 2022, Nature.
[8] W. Akemann,et al. Fast optical recording of neuronal activity by three-dimensional custom-access serial holography , 2021, Nature Methods.
[9] J. Hor,et al. Intravital and high-content multiplex imaging of the immune system. , 2021, Trends in cell biology.
[10] Hai Qi,et al. In Vivo Migration and Tfh Cell Interactions. , 2021, Methods in molecular biology.
[11] Ryan G. Natan,et al. In vivo volumetric imaging of calcium and glutamate activity at synapses with high spatiotemporal resolution , 2021, Nature Communications.
[12] Xing Lin,et al. Computational optical sectioning with an incoherent multiscale scattering model for light-field microscopy , 2021, Nature Communications.
[13] S. Preibisch,et al. Light sheet fluorescence microscopy , 2021, Nature Reviews Methods Primers.
[14] K. Tsia,et al. Speed scaling in multiphoton fluorescence microscopy , 2021, Nature Photonics.
[15] Kazuhiro Kurokawa,et al. Adaptive optics for high-resolution imaging , 2021, Nature Reviews Methods Primers.
[16] M. Hickey,et al. Immune cell behaviour and dynamics in the kidney — insights from in vivo imaging , 2021, Nature Reviews Nephrology.
[17] Shunbang Yu,et al. Migrasome biogenesis and functions , 2021, The FEBS journal.
[18] L. Luo. Architectures of neuronal circuits , 2021, Science.
[19] Eva-Maria Krämer-Albers,et al. The power of imaging to understand extracellular vesicle biology in vivo , 2021, Nature Methods.
[20] E. Kenigsberg,et al. Tissue-resident macrophages provide a pro-tumorigenic niche to early NSCLC cells , 2021, Nature.
[21] T. Toyoizumi,et al. Spine dynamics in the brain, mental disorders and artificial neural networks , 2021, Nature Reviews Neuroscience.
[22] Xiaoyu Hu,et al. Mitocytosis, a migrasome-mediated mitochondrial quality-control process , 2021, Cell.
[23] Qionghai Dai,et al. Iterative tomography with digital adaptive optics permits hour-long intravital observation of 3D subcellular dynamics at millisecond scale , 2021, Cell.
[24] L. Luo,et al. Cellular bases of olfactory circuit assembly revealed by systematic time-lapse imaging , 2021, Cell.
[25] R. Prevedel,et al. Deep learning-enhanced light-field imaging with continuous validation , 2021, Nature Methods.
[26] A. Vaziri,et al. High-speed, cortex-wide volumetric recording of neuroactivity at cellular resolution using light beads microscopy , 2021, Nature Methods.
[27] Hai Qi,et al. Affinity-coupled CCL22 promotes positive selection in germinal centres , 2021, Nature.
[28] M. Zhen,et al. Real-time volumetric reconstruction of biological dynamics with light-field microscopy and deep learning , 2021, Nature Methods.
[29] Jasmin Herz,et al. Functional characterization of the dural sinuses as a neuroimmune interface , 2021, Cell.
[30] Lu Fang,et al. Reinforcing neuron extraction and spike inference in calcium imaging using deep self-supervised learning , 2020, bioRxiv.
[31] Alon Rubin,et al. Representational drift in the mouse visual cortex , 2020, Current Biology.
[32] S. Jia,et al. Airy-beam tomographic microscopy. , 2020, Optica.
[33] Valentina Emiliani,et al. Scanless two-photon excitation with temporal focusing , 2020, Nature Methods.
[34] R. Jaenisch,et al. Intravital imaging of mouse embryos , 2020, Science.
[35] I. Davison,et al. Simultaneous multiplane imaging with reverberation two-photon microscopy , 2020, Nature Methods.
[36] K. Tsia,et al. Depth-resolved volumetric two-photon microscopy based on dual Airy beam scanning. , 2019, Optics letters.
[37] A. Descloux,et al. Parameter-free image resolution estimation based on decorrelation analysis , 2019, Nature Methods.
[38] Adam S. Charles,et al. Neural anatomy and optical microscopy (NAOMi) simulation for evaluating calcium imaging methods , 2019, Journal of Neuroscience Methods.
[39] Yuling Chen,et al. Migrasomes provide regional cues for organ morphogenesis during zebrafish gastrulation , 2019, Nature Cell Biology.
[40] Michael Z. Lin,et al. Kilohertz two-photon fluorescence microscopy imaging of neural activity in vivo , 2019, Nature Methods.
[41] M. Sur,et al. Functional imaging of visual cortical layers and subplate in awake mice with optimized three-photon microscopy , 2019, Nature Communications.
[42] R. Weissleder,et al. Recording the wild lives of immune cells , 2018, Science Immunology.
[43] Veit Elser,et al. Electron ptychography of 2D materials to deep sub-ångström resolution , 2018, Nature.
[44] Evan W. Miller,et al. Kilohertz frame-rate two-photon tomography , 2018, bioRxiv.
[45] Liangyi Chen,et al. Fast, long-term, super-resolution imaging with Hessian structured illumination microscopy , 2018, Nature Biotechnology.
[46] Zachary J Smith,et al. Structured illumination microscopy with interleaved reconstruction (SIMILR) , 2018, Journal of biophotonics.
[47] Elliot M. Meyerowitz,et al. Observing the cell in its native state: Imaging subcellular dynamics in multicellular organisms , 2018, Science.
[48] A. Agranat,et al. Observation of replica symmetry breaking in disordered nonlinear wave propagation , 2017, Nature Communications.
[49] M. Whalen,et al. Neuroimmunology of Traumatic Brain Injury: Time for a Paradigm Shift , 2017, Neuron.
[50] Wei Zheng,et al. Adaptive optics improves multiphoton super-resolution imaging , 2017, Nature Methods.
[51] Yifeng Zhou,et al. Large-field-of-view imaging by Multi-Pupil Adaptive Optics , 2017, Nature Methods.
[52] Weijian Yang,et al. In vivo imaging of neural activity , 2017, Nature Methods.
[53] E. Pnevmatikakis,et al. NoRMCorre: An online algorithm for piecewise rigid motion correction of calcium imaging data , 2017, Journal of Neuroscience Methods.
[54] A. Regev,et al. Scaling single-cell genomics from phenomenology to mechanism , 2017, Nature.
[55] Adam S. Charles,et al. Volumetric Two-photon Imaging of Neurons Using Stereoscopy (vTwINS) , 2016, Nature Methods.
[56] Johannes D. Seelig,et al. Video-rate volumetric functional imaging of the brain at synaptic resolution , 2016, Nature Neuroscience.
[57] Kaspar Podgorski,et al. Brain heating induced by near infrared lasers during multi-photon microscopy , 2016, bioRxiv.
[58] David Pfau,et al. Simultaneous Denoising, Deconvolution, and Demixing of Calcium Imaging Data , 2016, Neuron.
[59] L. Paninski,et al. Simultaneous Multi-plane Imaging of Neural Circuits , 2016, Neuron.
[60] Warren R. Zipfel,et al. Comparison of objective lenses for multiphoton microscopy in turbid samples. , 2015, Biomedical optics express.
[61] U. Klein,et al. Dynamics of B cells in germinal centres , 2015, Nature Reviews Immunology.
[62] Y. Li,et al. Discovery of the migrasome, an organelle mediating release of cytoplasmic contents during cell migration , 2014, Cell Research.
[63] Hai Qi,et al. T–B-cell entanglement and ICOSL-driven feed-forward regulation of germinal centre reaction , 2014, Nature.
[64] J. Yates,et al. Microglia Promote Learning-Dependent Synapse Formation through Brain-Derived Neurotrophic Factor , 2013, Cell.
[65] I. Hajnsek,et al. A tutorial on synthetic aperture radar , 2013, IEEE Geoscience and Remote Sensing Magazine.
[66] Stephen P. Boyd,et al. Distributed Optimization and Statistical Learning via the Alternating Direction Method of Multipliers , 2011, Found. Trends Mach. Learn..
[67] V. Perry,et al. Microglia in neurodegenerative disease , 2010, Nature Reviews Neurology.
[68] Jun Noguchi,et al. Structural dynamics of dendritic spines in memory and cognition , 2010, Trends in Neurosciences.
[69] Eric Betzig,et al. Adaptive optics via pupil segmentation for high-resolution imaging in biological tissues , 2010, Nature Methods.
[70] Philip F Stahel,et al. Mouse closed head injury model induced by a weight-drop device , 2009, Nature Protocols.
[71] F. Klauschen,et al. SAP-controlled T-B cell interactions underlie germinal centre formation , 2008, Nature.
[72] R. Bullock,et al. Moderate and severe traumatic brain injury in adults , 2008, The Lancet Neurology.
[73] Eric Betzig,et al. High-speed, low-photodamage nonlinear imaging using passive pulse splitters , 2008, Nature Methods.
[74] Marc Levoy,et al. Light field microscopy , 2006, ACM Trans. Graph..
[75] N. Kasthuri,et al. Long-term dendritic spine stability in the adult cortex , 2002, Nature.
[76] Michael D. Cahalan,et al. Two-photon tissue imaging: seeing the immune system in a fresh light , 2002, Nature Reviews Immunology.
[77] J A d'Arcy,et al. Applications of sliding window reconstruction with cartesian sampling for dynamic contrast enhanced MRI , 2002, NMR in biomedicine.
[78] E. Neher,et al. Highly nonlinear photodamage in two-photon fluorescence microscopy. , 2001, Biophysical journal.
[79] G. Patterson,et al. Photobleaching in two-photon excitation microscopy. , 2000, Biophysical journal.
[80] W. Denk,et al. Two-photon laser scanning fluorescence microscopy. , 1990, Science.
[81] M. Nussenzweig,et al. Dopamine in germinal centers , 2017, Nature Immunology.
[82] Ralph Weissleder,et al. Intravital Imaging , 2011, Cell.
[83] D G Pelli,et al. The VideoToolbox software for visual psychophysics: transforming numbers into movies. , 1997, Spatial vision.