Filter
Result Type
- Apply filter
- Apply filter
- Apply filter
- Apply filter
- Apply filter
- Apply filter
- Apply filter
- Apply filter
- Apply filter
- Area Landing Page (10) Apply Area Landing Page filter
- Collaborations (2) Apply Collaborations filter
- Conferences (256) Apply Conferences filter
- Janelia Archives (19) Apply Janelia Archives filter
- Janelia Archives Landing (1) Apply Janelia Archives Landing filter
- Lab (58) Apply Lab filter
- News Stories (285) Apply News Stories filter
- Other (533) Apply Other filter
- People (684) Apply People filter
- Project Team (15) Apply Project Team filter
- Publications (2852) Apply Publications filter
- Support Team (21) Apply Support Team filter
- Theory Fellow Landing Page (3) Apply Theory Fellow Landing Page filter
- Tool (132) Apply Tool filter
Associated Lab
- Aguilera Castrejon Lab (9) Apply Aguilera Castrejon Lab filter
- Ahrens Lab (81) Apply Ahrens Lab filter
- Aso Lab (49) Apply Aso Lab filter
- Baker Lab (20) Apply Baker Lab filter
- Betzig Lab (114) Apply Betzig Lab filter
- Beyene Lab (22) Apply Beyene Lab filter
- Bock Lab (15) Apply Bock Lab filter
- Branson Lab (65) Apply Branson Lab filter
- Card Lab (38) Apply Card Lab filter
- Cardona Lab (45) Apply Cardona Lab filter
- Chklovskii Lab (10) Apply Chklovskii Lab filter
- Clapham Lab (17) Apply Clapham Lab filter
- Cui Lab (20) Apply Cui Lab filter
- Darshan Lab (8) Apply Darshan Lab filter
- Dennis Lab (10) Apply Dennis Lab filter
- Dickson Lab (34) Apply Dickson Lab filter
- Druckmann Lab (21) Apply Druckmann Lab filter
- Dudman Lab (55) Apply Dudman Lab filter
- Eddy/Rivas Lab (30) Apply Eddy/Rivas Lab filter
- Egnor Lab (5) Apply Egnor Lab filter
- Espinosa Medina Lab (32) Apply Espinosa Medina Lab filter
- Feliciano Lab (19) Apply Feliciano Lab filter
- Fetter Lab (31) Apply Fetter Lab filter
- FIB-SEM Technology (1) Apply FIB-SEM Technology filter
- Fitzgerald Lab (17) Apply Fitzgerald Lab filter
- Freeman Lab (16) Apply Freeman Lab filter
- Funke Lab (48) Apply Funke Lab filter
- Gonen Lab (60) Apply Gonen Lab filter
- Grigorieff Lab (34) Apply Grigorieff Lab filter
- Harris Lab (66) Apply Harris Lab filter
- Heberlein Lab (15) Apply Heberlein Lab filter
- Hermundstad Lab (33) Apply Hermundstad Lab filter
- Hess Lab (88) Apply Hess Lab filter
- Ilanges Lab (10) Apply Ilanges Lab filter
- Jayaraman Lab (59) Apply Jayaraman Lab filter
- Ji Lab (34) Apply Ji Lab filter
- Johnson Lab (7) Apply Johnson Lab filter
- Kainmueller Lab (1) Apply Kainmueller Lab filter
- Karpova Lab (24) Apply Karpova Lab filter
- Keleman Lab (8) Apply Keleman Lab filter
- Keller Lab (80) Apply Keller Lab filter
- Koay Lab (10) Apply Koay Lab filter
- Lavis Lab (169) Apply Lavis Lab filter
- Lee (Albert) Lab (32) Apply Lee (Albert) Lab filter
- Leonardo Lab (19) Apply Leonardo Lab filter
- Li Lab (16) Apply Li Lab filter
- Lippincott-Schwartz Lab (122) Apply Lippincott-Schwartz Lab filter
- Liu (Yin) Lab (9) Apply Liu (Yin) Lab filter
- Liu (Zhe) Lab (68) Apply Liu (Zhe) Lab filter
- Looger Lab (144) Apply Looger Lab filter
- Magee Lab (31) Apply Magee Lab filter
- Menon Lab (12) Apply Menon Lab filter
- Murphy Lab (7) Apply Murphy Lab filter
- O'Shea Lab (14) Apply O'Shea Lab filter
- Otopalik Lab (7) Apply Otopalik Lab filter
- Pachitariu Lab (51) Apply Pachitariu Lab filter
- Pastalkova Lab (7) Apply Pastalkova Lab filter
- Pavlopoulos Lab (7) Apply Pavlopoulos Lab filter
- Pedram Lab (11) Apply Pedram Lab filter
- Podgorski Lab (18) Apply Podgorski Lab filter
- Reiser Lab (67) Apply Reiser Lab filter
- Riddiford Lab (21) Apply Riddiford Lab filter
- Romani Lab (54) Apply Romani Lab filter
- Rubin Lab (127) Apply Rubin Lab filter
- Ryan Lab (1) Apply Ryan Lab filter
- Saalfeld Lab (57) Apply Saalfeld Lab filter
- Satou Lab (9) Apply Satou Lab filter
- Scheffer Lab (39) Apply Scheffer Lab filter
- Schreiter Lab (67) Apply Schreiter Lab filter
- Schulze Lab (4) Apply Schulze Lab filter
- Sgro Lab (17) Apply Sgro Lab filter
- Shroff Lab (44) Apply Shroff Lab filter
- Simpson Lab (18) Apply Simpson Lab filter
- Singer Lab (39) Apply Singer Lab filter
- Spruston Lab (78) Apply Spruston Lab filter
- Stern Lab (86) Apply Stern Lab filter
- Sternson Lab (52) Apply Sternson Lab filter
- Stringer Lab (48) Apply Stringer Lab filter
- Svoboda Lab (146) Apply Svoboda Lab filter
- Tavakoli Lab (3) Apply Tavakoli Lab filter
- Tebo Lab (22) Apply Tebo Lab filter
- Tervo Lab (16) Apply Tervo Lab filter
- Tillberg Lab (23) Apply Tillberg Lab filter
- Tjian Lab (19) Apply Tjian Lab filter
- Truman Lab (59) Apply Truman Lab filter
- Turaga Lab (62) Apply Turaga Lab filter
- Turner Lab (33) Apply Turner Lab filter
- Vale Lab (10) Apply Vale Lab filter
- Voigts Lab (10) Apply Voigts Lab filter
- Wang (Meng) Lab (46) Apply Wang (Meng) Lab filter
- Wang (Shaohe) Lab (14) Apply Wang (Shaohe) Lab filter
- Wong-Campos Lab (6) Apply Wong-Campos Lab filter
- Wu Lab (9) Apply Wu Lab filter
- Zlatic Lab (26) Apply Zlatic Lab filter
- Zuker Lab (5) Apply Zuker Lab filter
Associated Project Team
- CellMap (30) Apply CellMap filter
- COSEM (3) Apply COSEM filter
- FIB-SEM Technology (11) Apply FIB-SEM Technology filter
- Fly Descending Interneuron (14) Apply Fly Descending Interneuron filter
- Fly Functional Connectome (15) Apply Fly Functional Connectome filter
- Fly Olympiad (5) Apply Fly Olympiad filter
- FlyEM (66) Apply FlyEM filter
- FlyLight (59) Apply FlyLight filter
- FuncEWOrm (9) Apply FuncEWOrm filter
- GENIE (68) Apply GENIE filter
- Integrative Imaging (9) Apply Integrative Imaging filter
- Larval Olympiad (2) Apply Larval Olympiad filter
- MouseLight (26) Apply MouseLight filter
- NeuroSeq (2) Apply NeuroSeq filter
- ThalamoSeq (1) Apply ThalamoSeq filter
- Tool Translation Team (T3) (38) Apply Tool Translation Team (T3) filter
- Transcription Imaging (48) Apply Transcription Imaging filter
Associated Support Team
- Project Pipeline Support (39) Apply Project Pipeline Support filter
- Anatomy and Histology (25) Apply Anatomy and Histology filter
- Cryo-Electron Microscopy (56) Apply Cryo-Electron Microscopy filter
- Electron Microscopy (24) Apply Electron Microscopy filter
- Flow Cytometry (4) Apply Flow Cytometry filter
- Gene Targeting and Transgenics (20) Apply Gene Targeting and Transgenics filter
- High Performance Computing (14) Apply High Performance Computing filter
- Immortalized Cell Line Culture (6) Apply Immortalized Cell Line Culture filter
- Integrative Imaging (39) Apply Integrative Imaging filter
- Invertebrate Shared Resource (50) Apply Invertebrate Shared Resource filter
- Janelia Experimental Technology (105) Apply Janelia Experimental Technology filter
- Management Team (1) Apply Management Team filter
- Mass Spectrometry (5) Apply Mass Spectrometry filter
- Media Facil\ (7) Apply Media Facil\ filter
- Molecular Genomics (20) Apply Molecular Genomics filter
- Project Technical Resources (71) Apply Project Technical Resources filter
- Quantitative Genomics (27) Apply Quantitative Genomics filter
- Scientific Computing (144) Apply Scientific Computing filter
- Stem Cell & Primary Culture (25) Apply Stem Cell & Primary Culture filter
- Viral Tools (22) Apply Viral Tools filter
- Vivarium (10) Apply Vivarium filter
Publication Date
- 2026 (77) Apply 2026 filter
- 2025 (247) Apply 2025 filter
- 2024 (239) Apply 2024 filter
- 2023 (187) Apply 2023 filter
- 2022 (192) Apply 2022 filter
- 2021 (187) Apply 2021 filter
- 2020 (194) Apply 2020 filter
- 2019 (201) Apply 2019 filter
- 2018 (221) Apply 2018 filter
- 2017 (202) Apply 2017 filter
- 2016 (207) Apply 2016 filter
- 2015 (222) Apply 2015 filter
- 2014 (216) Apply 2014 filter
- 2013 (152) Apply 2013 filter
- 2012 (112) Apply 2012 filter
- 2011 (98) Apply 2011 filter
- 2010 (61) Apply 2010 filter
- 2009 (56) Apply 2009 filter
- 2008 (40) Apply 2008 filter
- 2007 (21) Apply 2007 filter
- 2006 (3) Apply 2006 filter
Tool Types
- Data (9) Apply Data filter
- Data Application (7) Apply Data Application filter
- Figshare (1) Apply Figshare filter
- Human Health (2) Apply Human Health filter
- Imaging Instrumentation (11) Apply Imaging Instrumentation filter
- Laboratory Hardware (3) Apply Laboratory Hardware filter
- Laboratory Tool (6) Apply Laboratory Tool filter
- Laboratory Tools (51) Apply Laboratory Tools filter
- Medical Technology (1) Apply Medical Technology filter
- Model Organisms (9) Apply Model Organisms filter
- Reagents (29) Apply Reagents filter
- Software (20) Apply Software filter
5018 Results
Showing 4221-4230 of 5018 resultsCA1 pyramidal neurons from animals that have acquired hippocampal tasks show increased neuronal excitability, as evidenced by a reduction in the postburst afterhyperpolarization (AHP). Studies of AHP plasticity require stable long-term recordings, which are affected by the intracellular solutions potassium methylsulphate (KMeth) or potassium gluconate (KGluc). Here we show immediate and gradual effects of these intracellular solutions on measurement of the AHP and basic membrane properties, and on the induction of AHP plasticity in CA1 pyramidal neurons from rat hippocampal slices. The AHP measured immediately after establishing whole-cell recordings was larger with KMeth than with KGluc. In general, the AHP in KMeth was comparable to the AHP measured in the perforated-patch configuration. However, KMeth induced time-dependent changes in the intrinsic membrane properties of CA1 pyramidal neurons. Specifically, input resistance progressively increased by 70% after 50 min; correspondingly, the current required to trigger an action potential and the fast afterdepolarization following action potentials gradually decreased by about 50%. Conversely, these measures were stable in KGluc. We also demonstrate that activity-dependent plasticity of the AHP occurs with physiologically relevant stimuli in KGluc. AHPs triggered with theta-burst firing every 30 s were progressively reduced, whereas AHPs elicited every 150 s were stable. Blockade of the apamin-sensitive AHP current (I(AHP)) was insufficient to block AHP plasticity, suggesting that plasticity is manifested through changes in the apamin-insensitive slow AHP current (sI(AHP)). These changes were observed in the presence of synaptic blockers, and therefore reflect changes in the intrinsic properties of the neurons. However, no AHP plasticity was observed using KMeth. In summary, these data show that KMeth produces time-dependent changes in basic membrane properties and prevents or obscures activity-dependent reduction of the AHP. In whole-cell recordings using KGluc, repetitive theta-burst firing induced AHP plasticity that mimics learning-related reduction in the AHP.
Memories are believed to be stored in synapses and retrieved by reactivating neural ensembles. Learning alters synaptic weights, which can interfere with previously stored memories that share the same synapses, creating a trade-off between plasticity and stability. Interestingly, neural representations change even in stable environments, without apparent learning or forgetting-a phenomenon known as representational drift. Theoretical studies have suggested that multiple neural representations can correspond to a memory, with postlearning exploration of these representation solutions driving drift. However, it remains unclear whether representations explored through drift differ from those learned or offer unique advantages. Here, we show that representational drift uncovers noise-robust representations that are otherwise difficult to learn. We first define the nonlinear solution space manifold of synaptic weights for fixed input-output mappings, which allows us to disentangle drift from learning and forgetting and simulate drift as diffusion within this manifold. Solutions explored by drift have many inactive and saturated neurons, making them robust to weight perturbations due to noise or continual learning. Such solutions are prevalent and entropically favored by drift, but their lack of gradients makes them difficult to learn and nonconducive to future learning. To overcome this, we introduce an allocation procedure that selectively shifts representations for new stimuli into a learning-conducive regime. By combining allocation with drift, we resolve the trade-off between learnability and robustness.
Single-wavelength fluorescent reporters allow visualization of specific neurotransmitters with high spatial and temporal resolution. We report variants of intensity-based glutamate-sensing fluorescent reporter (iGluSnFR) that are functionally brighter; detect submicromolar to millimolar amounts of glutamate; and have blue, cyan, green, or yellow emission profiles. These variants could be imaged in vivo in cases where original iGluSnFR was too dim, resolved glutamate transients in dendritic spines and axonal boutons, and allowed imaging at kilohertz rates.
Fluorescence is magical. Shine one color of light on a fluorophore and it glows in another color. This property allows imaging of biological systems with high sensitivity─we can visualize individual fluorescent molecules in an ocean of nonfluorescent ones. Fluorescence microscopy has long been used to study isolated cells, both living and dead, but the development of newer, tailored fluorophores is swiftly expanding the use of fluorescence imaging to more complicated systems such as intact animals. In the latest in a long string of transformative work, Sletten and co-workers introduce dyes shrouded with multiple polymer chains─effectively star polymers with a bright fluorophore at the center.
An approaching predator and self-motion toward an object can generate similar looming patterns on the retina, but these situations demand different rapid responses. How central circuits flexibly process visual cues to activate appropriate, fast motor pathways remains unclear. Here we identify two descending neuron (DN) types that control landing and contribute to visuomotor flexibility in Drosophila. For each, silencing impairs visually evoked landing, activation drives landing, and spike rate determines leg extension amplitude. Critically, visual responses of both DNs are severely attenuated during non-flight periods, effectively decoupling visual stimuli from the landing motor pathway when landing is inappropriate. The flight-dependence mechanism differs between DN types. Octopamine exposure mimics flight effects in one, whereas the other probably receives neuronal feedback from flight motor circuits. Thus, this sensorimotor flexibility arises from distinct mechanisms for gating action-specific descending pathways, such that sensory and motor networks are coupled or decoupled according to the behavioral state.
