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4328 Publications

Showing 4171-4180 of 4328 results
01/02/08 | Universal memory mechanism for familiarity recognition and identification.
Yakovlev V, Amit DJ, Romani S, Hochstein S
The Journal of Neuroscience : The Official Journal of the Society for Neuroscience. 2008 Jan 2;28(1):239-48. doi: 10.1523/JNEUROSCI.4799-07.2008

Macaque monkeys were tested on a delayed-match-to-multiple-sample task, with either a limited set of well trained images (in randomized sequence) or with never-before-seen images. They performed much better with novel images. False positives were mostly limited to catch-trial image repetitions from the preceding trial. This result implies extremely effective one-shot learning, resembling Standing's finding that people detect familiarity for 10,000 once-seen pictures (with 80% accuracy) (Standing, 1973). Familiarity memory may differ essentially from identification, which embeds and generates contextual information. When encountering another person, we can say immediately whether his or her face is familiar. However, it may be difficult for us to identify the same person. To accompany the psychophysical findings, we present a generic neural network model reproducing these behaviors, based on the same conservative Hebbian synaptic plasticity that generates delay activity identification memory. Familiarity becomes the first step toward establishing identification. Adding an inter-trial reset mechanism limits false positives for previous-trial images. The model, unlike previous proposals, relates repetition-recognition with enhanced neural activity, as recently observed experimentally in 92% of differential cells in prefrontal cortex, an area directly involved in familiarity recognition. There may be an essential functional difference between enhanced responses to novel versus to familiar images: The maximal signal from temporal cortex is for novel stimuli, facilitating additional sensory processing of newly acquired stimuli. The maximal signal for familiar stimuli arising in prefrontal cortex facilitates the formation of selective delay activity, as well as additional consolidation of the memory of the image in an upstream cortical module.

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10/23/19 | Unlimited genetic switches for cell-type-specific manipulation.
Garcia-Marques J, Yang C, Isabel Espinosa Medina , Mok K, Koyama M, Lee T
Neuron. 2019 Oct 23;104(2):227-38. doi: https://doi.org/10.1016/j.neuron.2019.07.005

Gaining independent genetic access to discrete cell types is critical to interrogate their biological functions as well as to deliver precise gene therapy. Transcriptomics has allowed us to profile cell populations with extraordinary precision, revealing that cell types are typically defined by a unique combination of genetic markers. Given the lack of adequate tools to target cell types based on multiple markers, most cell types remain inaccessible to genetic manipulation. Here we present CaSSA, a platform to create unlimited genetic switches based on CRISPR/Cas9 (Ca) and the DNA repair mechanism known as single-strand annealing (SSA). CaSSA allows engineering of independent genetic switches, each responding to a specific gRNA. Expressing multiple gRNAs in specific patterns enables multiplex cell-type-specific manipulations and combinatorial genetic targeting. CaSSA is a new genetic tool that conceptually works as an unlimited number of recombinases and will facilitate genetic access to cell types in diverse organisms.

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05/13/25 | Unlocking in vivo metabolic insights with vibrational microscopy.
Chen T, Savini M, Wang MC
Nat Methods. 2025 May 13;22(5):886-889. doi: 10.1038/s41592-025-02616-3
05/13/25 | Unlocking in vivo metabolic insights with vibrational microscopy.
Chen T, Savini M, Wang MC
Nat Methods. 2025 May 13;22(5):886-889. doi: 10.1038/s41592-025-02616-3

No abstract available.

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04/01/18 | Unnecessary tension.
Cox JD, Seltzer MJ
Lab Animal. 2018 Apr;47(4):91. doi: 10.1038/s41684-018-0024-9
05/17/17 | Unraveling cell-to-cell signaling networks with chemical biology.
Gartner ZJ, Prescher JA, Lavis LD
Nature Chemical Biology. 2017 May 17;13(6):564-568. doi: 10.1038/nchembio.2391
12/11/21 | Unraveling Single-Particle Trajectories Confined in Tubular Networks
Yunhao Sun , Zexi Yu , Christopher Obara , Keshav Mittal , Jennifer Lippincott-Schwarz , Elena F Koslover
arXiv. 2021 Dec 11:

The analysis of single particle trajectories plays an important role in elucidating dynamics within complex environments such as those found in living cells. However, the characterization of intracellular particle motion is often confounded by confinement of the particles within non-trivial subcellular geometries. Here, we focus specifically on the case of particles undergoing Brownian motion within a tubular network, as found in some cellular organelles. An unraveling algorithm is developed to uncouple particle motion from the confining network structure, allowing for an accurate extraction of the diffusion coefficient, as well as differentiating between Brownian and fractional Brownian dynamics. We validate the algorithm with simulated trajectories and then highlight its application to an example system: analyzing the motion of membrane proteins confined in the tubules of the peripheral endoplasmic reticulum in mammalian cells. We show that these proteins undergo diffusive motion with a well-characterized diffusivity. Our algorithm provides a generally applicable approach for disentangling geometric morphology and particle dynamics in networked architectures.

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03/19/26 | Unstructured transcription factor interactions enable emergent specificity.
Abidi AA, Cattoglio C, Tang NN, Fan VB, Dailey GM, Hay AD, Kunamaneni P, Milkie DE, Darzacq X, Betzig E, Tjian R, Graham TG
Science. 2026 Mar 19:eaeb6487. doi: 10.1126/science.aeb6487

How intrinsically disordered regions (IDRs) influence chromatin binding and nuclear organization of transcription factors (TFs) remains unclear. We employed proximity-assisted photoactivation (PAPA), a single-molecule protein-protein interaction sensor, to investigate how IDRs might influence TF interactions with each other and with chromatin in live cells. We found that the Sp1 DNA binding domain (DBD) interacted poorly with chromatin and did not colocalize with Sp1. Weak interaction of the isolated IDR with full-length Sp1 was enhanced by fusion to various unrelated DBDs. Live imaging of polytene chromosomes confirmed that an IDR could confer sharp locus specificity on an otherwise nonspecific DBD. These findings suggest that TF specificity emerges on chromatin when ensembles of diverse, unstructured interactions are scaffolded by transient DNA contacts.

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01/01/07 | Unsupervised discovery of action hierarchies in large collections of activity videos.
Ahammad P, Yeo C, Ramchandran K, Sastry S
IEEE International Workshop on Multimedia Signal Processing . 2007:

Given a large collection of videos containing activities, we investigate the problem of organizing it in an unsupervised fashion into a hierarchy based on the similarity of actions embedded in the videos. We use spatio-temporal volumes of filtered motion vectors to compute appearance-invariant action similarity measures efficiently - and use these similarity measures in hierarchical agglomerative clustering to organize videos into a hierarchy such that neighboring nodes contain similar actions. This naturally leads to a simple automatic scheme for selecting videos of representative actions (exemplars) from the database and for efficiently indexing the whole database. We compute a performance metric on the hierarchical structure to evaluate goodness of the estimated hierarchy, and show that this metric has potential for predicting the clustering performance of various joining criteria used in building hierarchies. Our results show that perceptually meaningful hierarchies can be constructed based on action similarities with minimal user supervision, while providing favorable clustering performance and retrieval performance.

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09/04/06 | Unsupervised learning of boosted tree classifier using graph cuts for hand pose recognition.
Parag T, Elgammal A
British Machine Vision Conference. 2006 Sep 4: