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1.
Cell ; 185(2): 250-265.e16, 2022 01 20.
Artículo en Inglés | MEDLINE | ID: mdl-35021064

RESUMEN

Methods to deliver gene editing agents in vivo as ribonucleoproteins could offer safety advantages over nucleic acid delivery approaches. We report the development and application of engineered DNA-free virus-like particles (eVLPs) that efficiently package and deliver base editor or Cas9 ribonucleoproteins. By engineering VLPs to overcome cargo packaging, release, and localization bottlenecks, we developed fourth-generation eVLPs that mediate efficient base editing in several primary mouse and human cell types. Using different glycoproteins in eVLPs alters their cellular tropism. Single injections of eVLPs into mice support therapeutic levels of base editing in multiple tissues, reducing serum Pcsk9 levels 78% following 63% liver editing, and partially restoring visual function in a mouse model of genetic blindness. In vitro and in vivo off-target editing from eVLPs was virtually undetected, an improvement over AAV or plasmid delivery. These results establish eVLPs as promising vehicles for therapeutic macromolecule delivery that combine key advantages of both viral and nonviral delivery.


Asunto(s)
Sistemas de Liberación de Medicamentos , Ingeniería Genética , Proteínas/uso terapéutico , Virión/genética , Animales , Secuencia de Bases , Ceguera/genética , Ceguera/terapia , Encéfalo/metabolismo , ADN/metabolismo , Modelos Animales de Enfermedad , Fibroblastos/metabolismo , Edición Génica , Células HEK293 , Humanos , Hígado/patología , Ratones , Ratones Endogámicos C57BL , Proproteína Convertasa 9/metabolismo , Epitelio Pigmentado de la Retina/patología , Retroviridae , Virión/ultraestructura , Visión Ocular
2.
Cell ; 185(2): 311-327.e24, 2022 01 20.
Artículo en Inglés | MEDLINE | ID: mdl-35063073

RESUMEN

The role of postnatal experience in sculpting cortical circuitry, while long appreciated, is poorly understood at the level of cell types. We explore this in the mouse primary visual cortex (V1) using single-nucleus RNA sequencing, visual deprivation, genetics, and functional imaging. We find that vision selectively drives the specification of glutamatergic cell types in upper layers (L) (L2/3/4), while deeper-layer glutamatergic, GABAergic, and non-neuronal cell types are established prior to eye opening. L2/3 cell types form an experience-dependent spatial continuum defined by the graded expression of ∼200 genes, including regulators of cell adhesion and synapse formation. One of these genes, Igsf9b, a vision-dependent gene encoding an inhibitory synaptic cell adhesion molecule, is required for the normal development of binocular responses in L2/3. In summary, vision preferentially regulates the development of upper-layer glutamatergic cell types through the regulation of cell-type-specific gene expression programs.


Asunto(s)
Visión Ocular , Corteza Visual/citología , Corteza Visual/embriología , Animales , Animales Recién Nacidos , Biomarcadores/metabolismo , Perfilación de la Expresión Génica , Regulación del Desarrollo de la Expresión Génica , Ácido Glutámico/metabolismo , Masculino , Proteínas de la Membrana/genética , Proteínas de la Membrana/metabolismo , Ratones Endogámicos C57BL , Proteínas del Tejido Nervioso/genética , Proteínas del Tejido Nervioso/metabolismo , Neuronas/citología , RNA-Seq , Transcriptoma/genética , Visión Binocular/genética , Ácido gamma-Aminobutírico/metabolismo
3.
Cell ; 184(16): 4299-4314.e12, 2021 08 05.
Artículo en Inglés | MEDLINE | ID: mdl-34297923

RESUMEN

Retinal ganglion cells (RGCs) are the sole output neurons that transmit visual information from the retina to the brain. Diverse insults and pathological states cause degeneration of RGC somas and axons leading to irreversible vision loss. A fundamental question is whether manipulation of a key regulator of RGC survival can protect RGCs from diverse insults and pathological states, and ultimately preserve vision. Here, we report that CaMKII-CREB signaling is compromised after excitotoxic injury to RGC somas or optic nerve injury to RGC axons, and reactivation of this pathway robustly protects RGCs from both injuries. CaMKII activity also promotes RGC survival in the normal retina. Further, reactivation of CaMKII protects RGCs in two glaucoma models where RGCs degenerate from elevated intraocular pressure or genetic deficiency. Last, CaMKII reactivation protects long-distance RGC axon projections in vivo and preserves visual function, from the retina to the visual cortex, and visually guided behavior.


Asunto(s)
Proteína Quinasa Tipo 2 Dependiente de Calcio Calmodulina/metabolismo , Citoprotección , Células Ganglionares de la Retina/patología , Visión Ocular , Animales , Axones/efectos de los fármacos , Axones/patología , Encéfalo/patología , Proteína de Unión a Elemento de Respuesta al AMP Cíclico/metabolismo , Dependovirus/metabolismo , Modelos Animales de Enfermedad , Activación Enzimática/efectos de los fármacos , Glaucoma/genética , Glaucoma/patología , Ratones Endogámicos C57BL , Neurotoxinas/toxicidad , Traumatismos del Nervio Óptico/patología , Transducción de Señal
4.
Cell ; 181(4): 774-783.e5, 2020 05 14.
Artículo en Inglés | MEDLINE | ID: mdl-32413298

RESUMEN

A visual cortical prosthesis (VCP) has long been proposed as a strategy for restoring useful vision to the blind, under the assumption that visual percepts of small spots of light produced with electrical stimulation of visual cortex (phosphenes) will combine into coherent percepts of visual forms, like pixels on a video screen. We tested an alternative strategy in which shapes were traced on the surface of visual cortex by stimulating electrodes in dynamic sequence. In both sighted and blind participants, dynamic stimulation enabled accurate recognition of letter shapes predicted by the brain's spatial map of the visual world. Forms were presented and recognized rapidly by blind participants, up to 86 forms per minute. These findings demonstrate that a brain prosthetic can produce coherent percepts of visual forms.


Asunto(s)
Ceguera/fisiopatología , Visión Ocular/fisiología , Percepción Visual/fisiología , Adulto , Estimulación Eléctrica/métodos , Electrodos , Femenino , Humanos , Masculino , Persona de Mediana Edad , Fosfenos , Corteza Visual/metabolismo , Corteza Visual/fisiología , Prótesis Visuales
5.
Cell ; 177(2): 243-255.e15, 2019 04 04.
Artículo en Inglés | MEDLINE | ID: mdl-30827682

RESUMEN

Mammals cannot see light over 700 nm in wavelength. This limitation is due to the physical thermodynamic properties of the photon-detecting opsins. However, the detection of naturally invisible near-infrared (NIR) light is a desirable ability. To break this limitation, we developed ocular injectable photoreceptor-binding upconversion nanoparticles (pbUCNPs). These nanoparticles anchored on retinal photoreceptors as miniature NIR light transducers to create NIR light image vision with negligible side effects. Based on single-photoreceptor recordings, electroretinograms, cortical recordings, and visual behavioral tests, we demonstrated that mice with these nanoantennae could not only perceive NIR light, but also see NIR light patterns. Excitingly, the injected mice were also able to differentiate sophisticated NIR shape patterns. Moreover, the NIR light pattern vision was ambient-daylight compatible and existed in parallel with native daylight vision. This new method will provide unmatched opportunities for a wide variety of emerging bio-integrated nanodevice designs and applications. VIDEO ABSTRACT.


Asunto(s)
Nanopartículas/uso terapéutico , Células Fotorreceptoras de Vertebrados/fisiología , Visión Ocular/fisiología , Animales , Femenino , Rayos Infrarrojos , Inyecciones/métodos , Luz , Masculino , Mamíferos/fisiología , Ratones , Ratones Endogámicos C57BL , Opsinas/metabolismo , Retina/metabolismo , Retina/fisiología , Células Fotorreceptoras Retinianas Conos/fisiología , Visión Ocular/genética
6.
Cell ; 174(3): 607-621.e18, 2018 07 26.
Artículo en Inglés | MEDLINE | ID: mdl-30033367

RESUMEN

Many animals rely on vision to detect, locate, and track moving objects. In Drosophila courtship, males primarily use visual cues to orient toward and follow females and to select the ipsilateral wing for courtship song. Here, we show that the LC10 visual projection neurons convey essential visual information during courtship. Males with LC10 neurons silenced are unable to orient toward or maintain proximity to the female and do not predominantly use the ipsilateral wing when singing. LC10 neurons preferentially respond to small moving objects using an antagonistic motion-based center-surround mechanism. Unilateral activation of LC10 neurons recapitulates the orienting and ipsilateral wing extension normally elicited by females, and the potency with which LC10 induces wing extension is enhanced in a state of courtship arousal controlled by male-specific P1 neurons. These data suggest that LC10 is a major pathway relaying visual input to the courtship circuits in the male brain.


Asunto(s)
Neuronas Retinianas/fisiología , Conducta Sexual Animal/fisiología , Visión Ocular/fisiología , Animales , Encéfalo , Cortejo , Señales (Psicología) , Proteínas de Drosophila/fisiología , Drosophila melanogaster/fisiología , Femenino , Interneuronas/fisiología , Masculino , Neuronas/fisiología , Agudeza Visual/fisiología , Corteza Visual/fisiología
7.
Cell ; 173(6): 1343-1355.e24, 2018 05 31.
Artículo en Inglés | MEDLINE | ID: mdl-29856953

RESUMEN

Numerous well-defined classes of retinal ganglion cells innervate the thalamus to guide image-forming vision, yet the rules governing their convergence and divergence remain unknown. Using two-photon calcium imaging in awake mouse thalamus, we observed a functional arrangement of retinal ganglion cell axonal boutons in which coarse-scale retinotopic ordering gives way to fine-scale organization based on shared preferences for other visual features. Specifically, at the ∼6 µm scale, clusters of boutons from different axons often showed similar preferences for either one or multiple features, including axis and direction of motion, spatial frequency, and changes in luminance. Conversely, individual axons could "de-multiplex" information channels by participating in multiple, functionally distinct bouton clusters. Finally, ultrastructural analyses demonstrated that retinal axonal boutons in a local cluster often target the same dendritic domain. These data suggest that functionally specific convergence and divergence of retinal axons may impart diverse, robust, and often novel feature selectivity to visual thalamus.


Asunto(s)
Axones/fisiología , Retina/fisiología , Células Ganglionares de la Retina/fisiología , Tálamo/fisiología , Animales , Análisis por Conglomerados , Dendritas/fisiología , Lógica Difusa , Cuerpos Geniculados/fisiología , Masculino , Ratones , Ratones Endogámicos C57BL , Movimiento (Física) , Neuronas/fisiología , Terminales Presinápticos/fisiología , Visión Ocular , Vías Visuales
8.
Cell ; 175(3): 652-664.e12, 2018 10 18.
Artículo en Inglés | MEDLINE | ID: mdl-30270038

RESUMEN

Non-image-forming vision in mammals is mediated primarily by melanopsin-expressing, intrinsically photosensitive retinal ganglion cells (ipRGCs). In mouse M1-ipRGCs, by far the best-studied subtype, melanopsin activates PLCß4 (phospholipase C-ß4) to open TRPC6,7 channels, mechanistically similar to phototransduction in fly rhabdomeric (microvillous) photoreceptors. We report here that, surprisingly, mouse M4-ipRGCs rely on a different and hitherto undescribed melanopsin-driven, ciliary phototransduction mechanism involving cyclic nucleotide as the second messenger and HCN channels rather than CNG channels as the ion channel for phototransduction. Even more surprisingly, within an individual mouse M2-ipRGC, this HCN-channel-dependent, ciliary phototransduction pathway operates in parallel with the TRPC6,7-dependent rhabdomeric pathway. These findings reveal a complex heterogeneity in phototransduction among ipRGCs and, more importantly, break a general dogma about segregation of the two phototransduction motifs, likely with strong evolutionary implications.


Asunto(s)
Canales Catiónicos Regulados por Nucleótidos Cíclicos/metabolismo , Canales Regulados por Nucleótidos Cíclicos Activados por Hiperpolarización/metabolismo , Células Ganglionares de la Retina/metabolismo , Visión Ocular , Animales , Femenino , Células HEK293 , Humanos , Masculino , Ratones , Ratones Endogámicos C57BL , Nucleótidos Cíclicos/metabolismo , Células Ganglionares de la Retina/fisiología , Canales Catiónicos TRPC/metabolismo
9.
Cell ; 175(1): 71-84.e18, 2018 09 20.
Artículo en Inglés | MEDLINE | ID: mdl-30173913

RESUMEN

Light exerts a range of powerful biological effects beyond image vision, including mood and learning regulation. While the source of photic information affecting mood and cognitive functions is well established, viz. intrinsically photosensitive retinal ganglion cells (ipRGCs), the central mediators are unknown. Here, we reveal that the direct effects of light on learning and mood utilize distinct ipRGC output streams. ipRGCs that project to the suprachiasmatic nucleus (SCN) mediate the effects of light on learning, independently of the SCN's pacemaker function. Mood regulation by light, on the other hand, requires an SCN-independent pathway linking ipRGCs to a previously unrecognized thalamic region, termed perihabenular nucleus (PHb). The PHb is integrated in a distinctive circuitry with mood-regulating centers and is both necessary and sufficient for driving the effects of light on affective behavior. Together, these results provide new insights into the neural basis required for light to influence mood and learning.


Asunto(s)
Afecto/efectos de la radiación , Aprendizaje/efectos de la radiación , Luz , Afecto/fisiología , Animales , Encéfalo/fisiología , Ritmo Circadiano , Aprendizaje/fisiología , Ratones , Ratones Endogámicos C57BL , Fototerapia/métodos , Retina/metabolismo , Retina/fisiología , Células Ganglionares de la Retina/metabolismo , Células Ganglionares de la Retina/fisiología , Células Ganglionares de la Retina/efectos de la radiación , Transducción de Señal/fisiología , Núcleo Supraquiasmático/metabolismo , Visión Ocular/fisiología , Vías Visuales/metabolismo , Percepción Visual/fisiología
10.
Annu Rev Neurosci ; 46: 17-37, 2023 07 10.
Artículo en Inglés | MEDLINE | ID: mdl-37428604

RESUMEN

How neurons detect the direction of motion is a prime example of neural computation: Motion vision is found in the visual systems of virtually all sighted animals, it is important for survival, and it requires interesting computations with well-defined linear and nonlinear processing steps-yet the whole process is of moderate complexity. The genetic methods available in the fruit fly Drosophila and the charting of a connectome of its visual system have led to rapid progress and unprecedented detail in our understanding of how neurons compute the direction of motion in this organism. The picture that emerged incorporates not only the identity, morphology, and synaptic connectivity of each neuron involved but also its neurotransmitters, its receptors, and their subcellular localization. Together with the neurons' membrane potential responses to visual stimulation, this information provides the basis for a biophysically realistic model of the circuit that computes the direction of visual motion.


Asunto(s)
Percepción de Movimiento , Animales , Percepción de Movimiento/fisiología , Vías Visuales/fisiología , Drosophila/fisiología , Visión Ocular , Neuronas/fisiología , Estimulación Luminosa
11.
Annu Rev Neurosci ; 45: 471-489, 2022 07 08.
Artículo en Inglés | MEDLINE | ID: mdl-35803589

RESUMEN

Unimodal sensory loss leads to structural and functional changes in both deprived and nondeprived brain circuits. This process is broadly known as cross-modal plasticity. The evidence available indicates that cross-modal changes underlie the enhanced performances of the spared sensory modalities in deprived subjects. Sensory experience is a fundamental driver of cross-modal plasticity, yet there is evidence from early-visually deprived models supporting an additional role for experience-independent factors. These experience-independent factors are expected to act early in development and constrain neuronal plasticity at later stages. Here we review the cross-modal adaptations elicited by congenital or induced visual deprivation prior to vision. In most of these studies, cross-modal adaptations have been addressed at the structural and functional levels. Here, we also appraise recent data regarding behavioral performance in early-visually deprived models. However, further research is needed to explore how circuit reorganization affects their function and what brings about enhanced behavioral performance.


Asunto(s)
Plasticidad Neuronal , Privación Sensorial , Encéfalo , Humanos , Plasticidad Neuronal/fisiología , Privación Sensorial/fisiología , Visión Ocular
12.
Cell ; 163(7): 1756-69, 2015 Dec 17.
Artículo en Inglés | MEDLINE | ID: mdl-26687360

RESUMEN

Information processing relies on precise patterns of synapses between neurons. The cellular recognition mechanisms regulating this specificity are poorly understood. In the medulla of the Drosophila visual system, different neurons form synaptic connections in different layers. Here, we sought to identify candidate cell recognition molecules underlying this specificity. Using RNA sequencing (RNA-seq), we show that neurons with different synaptic specificities express unique combinations of mRNAs encoding hundreds of cell surface and secreted proteins. Using RNA-seq and protein tagging, we demonstrate that 21 paralogs of the Dpr family, a subclass of immunoglobulin (Ig)-domain containing proteins, are expressed in unique combinations in homologous neurons with different layer-specific synaptic connections. Dpr interacting proteins (DIPs), comprising nine paralogs of another subclass of Ig-containing proteins, are expressed in a complementary layer-specific fashion in a subset of synaptic partners. We propose that pairs of Dpr/DIP paralogs contribute to layer-specific patterns of synaptic connectivity.


Asunto(s)
Proteínas de Drosophila/metabolismo , Inmunoglobulinas/metabolismo , Neuronas/metabolismo , Receptores Inmunológicos/metabolismo , Sinapsis , Animales , Drosophila , Citometría de Flujo , Análisis de Secuencia de ARN , Visión Ocular
13.
Nature ; 615(7954): 939-944, 2023 03.
Artículo en Inglés | MEDLINE | ID: mdl-36949205

RESUMEN

Vision is initiated by the rhodopsin family of light-sensitive G protein-coupled receptors (GPCRs)1. A photon is absorbed by the 11-cis retinal chromophore of rhodopsin, which isomerizes within 200 femtoseconds to the all-trans conformation2, thereby initiating the cellular signal transduction processes that ultimately lead to vision. However, the intramolecular mechanism by which the photoactivated retinal induces the activation events inside rhodopsin remains experimentally unclear. Here we use ultrafast time-resolved crystallography at room temperature3 to determine how an isomerized twisted all-trans retinal stores the photon energy that is required to initiate the protein conformational changes associated with the formation of the G protein-binding signalling state. The distorted retinal at a 1-ps time delay after photoactivation has pulled away from half of its numerous interactions with its binding pocket, and the excess of the photon energy is released through an anisotropic protein breathing motion in the direction of the extracellular space. Notably, the very early structural motions in the protein side chains of rhodopsin appear in regions that are involved in later stages of the conserved class A GPCR activation mechanism. Our study sheds light on the earliest stages of vision in vertebrates and points to fundamental aspects of the molecular mechanisms of agonist-mediated GPCR activation.


Asunto(s)
Rodopsina , Visión Ocular , Animales , Sitios de Unión/efectos de la radiación , Cristalografía , Proteínas de Unión al GTP Heterotriméricas/química , Proteínas de Unión al GTP Heterotriméricas/metabolismo , Isomerismo , Fotones , Unión Proteica/efectos de la radiación , Conformación Proteica/efectos de la radiación , Retinaldehído/química , Retinaldehído/metabolismo , Retinaldehído/efectos de la radiación , Rodopsina/química , Rodopsina/metabolismo , Rodopsina/efectos de la radiación , Factores de Tiempo , Visión Ocular/fisiología , Visión Ocular/efectos de la radiación
14.
Nature ; 624(7991): 415-424, 2023 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-38092908

RESUMEN

The basic plan of the retina is conserved across vertebrates, yet species differ profoundly in their visual needs1. Retinal cell types may have evolved to accommodate these varied needs, but this has not been systematically studied. Here we generated and integrated single-cell transcriptomic atlases of the retina from 17 species: humans, two non-human primates, four rodents, three ungulates, opossum, ferret, tree shrew, a bird, a reptile, a teleost fish and a lamprey. We found high molecular conservation of the six retinal cell classes (photoreceptors, horizontal cells, bipolar cells, amacrine cells, retinal ganglion cells (RGCs) and Müller glia), with transcriptomic variation across species related to evolutionary distance. Major subclasses were also conserved, whereas variation among cell types within classes or subclasses was more pronounced. However, an integrative analysis revealed that numerous cell types are shared across species, based on conserved gene expression programmes that are likely to trace back to an early ancestral vertebrate. The degree of variation among cell types increased from the outer retina (photoreceptors) to the inner retina (RGCs), suggesting that evolution acts preferentially to shape the retinal output. Finally, we identified rodent orthologues of midget RGCs, which comprise more than 80% of RGCs in the human retina, subserve high-acuity vision, and were previously believed to be restricted to primates2. By contrast, the mouse orthologues have large receptive fields and comprise around 2% of mouse RGCs. Projections of both primate and mouse orthologous types are overrepresented in the thalamus, which supplies the primary visual cortex. We suggest that midget RGCs are not primate innovations, but are descendants of evolutionarily ancient types that decreased in size and increased in number as primates evolved, thereby facilitating high visual acuity and increased cortical processing of visual information.


Asunto(s)
Evolución Biológica , Neuronas , Retina , Vertebrados , Visión Ocular , Animales , Humanos , Neuronas/clasificación , Neuronas/citología , Neuronas/fisiología , Retina/citología , Retina/fisiología , Células Ganglionares de la Retina/clasificación , Análisis de Expresión Génica de una Sola Célula , Vertebrados/fisiología , Visión Ocular/fisiología , Especificidad de la Especie , Células Amacrinas/clasificación , Células Fotorreceptoras/clasificación , Células Ependimogliales/clasificación , Células Bipolares de la Retina/clasificación , Percepción Visual
15.
Nat Rev Neurosci ; 24(8): 487-501, 2023 08.
Artículo en Inglés | MEDLINE | ID: mdl-37380885

RESUMEN

Many behaviours that are critical for animals to survive and thrive rely on spatial navigation. Spatial navigation, in turn, relies on internal representations about one's spatial location, one's orientation or heading direction and the distance to objects in the environment. Although the importance of vision in guiding such internal representations has long been recognized, emerging evidence suggests that spatial signals can also modulate neural responses in the central visual pathway. Here, we review the bidirectional influences between visual and navigational signals in the rodent brain. Specifically, we discuss reciprocal interactions between vision and the internal representations of spatial position, explore the effects of vision on representations of an animal's heading direction and vice versa, and examine how the visual and navigational systems work together to assess the relative distances of objects and other features. Throughout, we consider how technological advances and novel ethological paradigms that probe rodent visuo-spatial behaviours allow us to advance our understanding of how brain areas of the central visual pathway and the spatial systems interact and enable complex behaviours.


Asunto(s)
Roedores , Navegación Espacial , Animales , Encéfalo/fisiología , Visión Ocular , Navegación Espacial/fisiología , Vías Visuales
16.
Cell ; 154(2): 365-76, 2013 Jul 18.
Artículo en Inglés | MEDLINE | ID: mdl-23870125

RESUMEN

Phagocytosis and degradation of photoreceptor outer segments (POS) by retinal pigment epithelium (RPE) is fundamental to vision. Autophagy is also responsible for bulk degradation of cellular components, but its role in POS degradation is not well understood. We report that the morning burst of RPE phagocytosis coincided with the enzymatic conversion of autophagy protein LC3 to its lipidated form. LC3 associated with single-membrane phagosomes containing engulfed POS in an Atg5-dependent manner that required Beclin1, but not the autophagy preinitiation complex. The importance of this process was verified in mice with Atg5-deficient RPE cells that showed evidence of disrupted lysosomal processing. These mice also exhibited decreased photoreceptor responses to light stimuli and decreased chromophore levels that were restored with exogenous retinoid supplementation. These results establish that the interplay of phagocytosis and autophagy within the RPE is required for both POS degradation and the maintenance of retinoid levels to support vision.


Asunto(s)
Autofagia , Células Fotorreceptoras de Vertebrados/metabolismo , Epitelio Pigmentado de la Retina/citología , Epitelio Pigmentado de la Retina/metabolismo , Visión Ocular , Animales , Proteínas Reguladoras de la Apoptosis/metabolismo , Proteína 5 Relacionada con la Autofagia , Beclina-1 , Bovinos , Lisosomas/metabolismo , Ratones , Proteínas Asociadas a Microtúbulos/genética , Proteínas Asociadas a Microtúbulos/metabolismo , Fagocitosis , Fagosomas/metabolismo , Retinoides/metabolismo
17.
Nature ; 612(7938): 116-122, 2022 12.
Artículo en Inglés | MEDLINE | ID: mdl-36289333

RESUMEN

Most animals have compound eyes, with tens to thousands of lenses attached rigidly to the exoskeleton. A natural assumption is that all of these species must resort to moving either their head or their body to actively change their visual input. However, classic anatomy has revealed that flies have muscles poised to move their retinas under the stable lenses of each compound eye1-3. Here we show that Drosophila use their retinal muscles to smoothly track visual motion, which helps to stabilize the retinal image, and also to perform small saccades when viewing a stationary scene. We show that when the retina moves, visual receptive fields shift accordingly, and that even the smallest retinal saccades activate visual neurons. Using a head-fixed behavioural paradigm, we find that Drosophila perform binocular, vergence movements of their retinas-which could enhance depth perception-when crossing gaps, and impairing the physiology of retinal motor neurons alters gap-crossing trajectories during free behaviour. That flies evolved an ability to actuate their retinas suggests that moving the eye independently of the head is broadly paramount for animals. The similarities of smooth and saccadic movements of the Drosophila retina and the vertebrate eye highlight a notable example of convergent evolution.


Asunto(s)
Drosophila , Movimientos Oculares , Músculos , Retina , Visión Ocular , Animales , Drosophila/fisiología , Movimientos Oculares/fisiología , Músculos/fisiología , Retina/fisiología , Movimientos Sacádicos/fisiología , Visión Ocular/fisiología , Visión Binocular , Percepción de Profundidad , Neuronas Motoras , Cabeza/fisiología , Drosophila melanogaster/fisiología , Evolución Biológica
18.
Nature ; 610(7930): 128-134, 2022 10.
Artículo en Inglés | MEDLINE | ID: mdl-36171291

RESUMEN

To increase computational flexibility, the processing of sensory inputs changes with behavioural context. In the visual system, active behavioural states characterized by motor activity and pupil dilation1,2 enhance sensory responses, but typically leave the preferred stimuli of neurons unchanged2-9. Here we find that behavioural state also modulates stimulus selectivity in the mouse visual cortex in the context of coloured natural scenes. Using population imaging in behaving mice, pharmacology and deep neural network modelling, we identified a rapid shift in colour selectivity towards ultraviolet stimuli during an active behavioural state. This was exclusively caused by state-dependent pupil dilation, which resulted in a dynamic switch from rod to cone photoreceptors, thereby extending their role beyond night and day vision. The change in tuning facilitated the decoding of ethological stimuli, such as aerial predators against the twilight sky10. For decades, studies in neuroscience and cognitive science have used pupil dilation as an indirect measure of brain state. Our data suggest that, in addition, state-dependent pupil dilation itself tunes visual representations to behavioural demands by differentially recruiting rods and cones on fast timescales.


Asunto(s)
Color , Pupila , Reflejo Pupilar , Visión Ocular , Corteza Visual , Animales , Oscuridad , Aprendizaje Profundo , Ratones , Estimulación Luminosa , Pupila/fisiología , Pupila/efectos de la radiación , Reflejo Pupilar/fisiología , Células Fotorreceptoras Retinianas Conos/efectos de los fármacos , Células Fotorreceptoras Retinianas Conos/fisiología , Células Fotorreceptoras Retinianas Bastones/efectos de los fármacos , Células Fotorreceptoras Retinianas Bastones/fisiología , Factores de Tiempo , Rayos Ultravioleta , Visión Ocular/fisiología , Corteza Visual/fisiología
19.
Nature ; 604(7905): 316-322, 2022 04.
Artículo en Inglés | MEDLINE | ID: mdl-35388222

RESUMEN

The brain consists of thousands of neuronal types that are generated by stem cells producing different neuronal types as they age. In Drosophila, this temporal patterning is driven by the successive expression of temporal transcription factors (tTFs)1-6. Here we used single-cell mRNA sequencing to identify the complete series of tTFs that specify most Drosophila optic lobe neurons. We verify that tTFs regulate the progression of the series by activating the next tTF(s) and repressing the previous one(s), and also identify more complex mechanisms of regulation. Moreover, we establish the temporal window of origin and birth order of each neuronal type in the medulla and provide evidence that these tTFs are sufficient to explain the generation of all of the neuronal diversity in this brain region. Finally, we describe the first steps of neuronal differentiation and show that these steps are conserved in humans. We find that terminal differentiation genes, such as neurotransmitter-related genes, are present as transcripts, but not as proteins, in immature larval neurons. This comprehensive analysis of a temporal series of tTFs in the optic lobe offers mechanistic insights into how tTF series are regulated, and how they can lead to the generation of a complete set of neurons.


Asunto(s)
Proteínas de Drosophila , Drosophila melanogaster , Regulación del Desarrollo de la Expresión Génica , Lóbulo Óptico de Animales no Mamíferos , Factores de Transcripción , Visión Ocular , Percepción Visual , Animales , Proteínas de Drosophila/genética , Proteínas de Drosophila/metabolismo , Drosophila melanogaster/citología , Drosophila melanogaster/genética , Drosophila melanogaster/metabolismo , Células-Madre Neurales/citología , Células-Madre Neurales/metabolismo , Neuronas/citología , Neuronas/metabolismo , Lóbulo Óptico de Animales no Mamíferos/citología , RNA-Seq , Análisis de la Célula Individual , Factores de Transcripción/metabolismo
20.
Annu Rev Neurosci ; 42: 169-186, 2019 07 08.
Artículo en Inglés | MEDLINE | ID: mdl-30857477

RESUMEN

Daylight vision begins when light activates cone photoreceptors in the retina, creating spatial patterns of neural activity. These cone signals are then combined and processed in downstream neural circuits, ultimately producing visual perception. Recent technical advances have made it possible to deliver visual stimuli to the retina that probe this processing by the visual system at its elementary resolution of individual cones. Physiological recordings from nonhuman primate retinas reveal the spatial organization of cone signals in retinal ganglion cells, including how signals from cones of different types are combined to support both spatial and color vision. Psychophysical experiments with human subjects characterize the visual sensations evoked by stimulating a single cone, including the perception of color. Future combined physiological and psychophysical experiments focusing on probing the elementary visual inputs are likely to clarify how neural processing generates our perception of the visual world.


Asunto(s)
Primates/fisiología , Células Fotorreceptoras Retinianas Conos/fisiología , Visión Ocular/fisiología , Animales , Visión de Colores/fisiología , Percepción de Forma/fisiología , Técnicas de Placa-Clamp , Estimulación Luminosa , Células Ganglionares de la Retina/fisiología , Análisis de la Célula Individual , Percepción Visual/fisiología
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