• <tr id="yyy80"></tr>
  • <sup id="yyy80"></sup>
  • <tfoot id="yyy80"><noscript id="yyy80"></noscript></tfoot>
  • 99热精品在线国产_美女午夜性视频免费_国产精品国产高清国产av_av欧美777_自拍偷自拍亚洲精品老妇_亚洲熟女精品中文字幕_www日本黄色视频网_国产精品野战在线观看 ?

    Deconstructing brain-derived neurotrophic factor actions in adult brain circuits to bridge an existing informational gap in neuro-cell biology

    2016-12-02 03:28:07HeatherBowlingAditiBhattacharyaEricKlannMosesChao

    Heather Bowling, Aditi Bhattacharya, Eric Klann Moses V. Chao

    1 Center for Neural Science, New York University, New York, NY, USA

    2 Center for Brain Development and Repair, Institute for Stem Cell Biology and Regenerative Medicine, Bangalore, India

    3 Departments of Cell Biology, Physiology, and Neuroscience and Psychiatry, Kimmel Center for Biology and Medicine at the Skirball Institute, New York University School of Medicine, New York, NY, USA

    INVITED REVIEW

    Deconstructing brain-derived neurotrophic factor actions in adult brain circuits to bridge an existing informational gap in neuro-cell biology

    Heather Bowling1,#,*, Aditi Bhattacharya2,#,*, Eric Klann1, Moses V. Chao3

    1 Center for Neural Science, New York University, New York, NY, USA

    2 Center for Brain Development and Repair, Institute for Stem Cell Biology and Regenerative Medicine, Bangalore, India

    3 Departments of Cell Biology, Physiology, and Neuroscience and Psychiatry, Kimmel Center for Biology and Medicine at the Skirball Institute, New York University School of Medicine, New York, NY, USA

    Brain-derived neurotrophic factor (BDNF) plays an important role in neurodevelopment, synaptic plasticity, learning and memory, and in preventing neurodegeneration. Despite decades of investigations into downstream signaling cascades and changes in cellular processes, the mechanisms of how BDNF reshapes circuits in vivo remain unclear. This informational gap partly arises from the fact that the bulk of studies into the molecular actions of BDNF have been performed in dissociated neuronal cultures, while the majority of studies on synaptic plasticity, learning and memory were performed in acute brain slices or in vivo. A recent study by Bowling-Bhattacharya et al., measured the proteomic changes in acute adult hippocampal slices following treatment and reported changes in proteins of neuronal and non-neuronal origin that may in concert modulate synaptic release and secretion in the slice. In this paper, we place these findings into the context of existing literature and discuss how they impact our understanding of how BDNF can reshape the brain.

    BONLAC; BDNF; adult slice proteomics; neuroproteomics; SILAC; BONCAT; hippocampus; protein synthesis

    # These authors contributed equally to this work.

    orcid: 0000-0002-2137-4066 (Heather Bowling) 0000-0002-6260-2897 (Aditi Bhattacharya)

    Accepted: 2016-01-05

    Introduction

    Brain-derived neurotrophic factor (BDNF) was first purified by Barde et al. (1982) and was quickly established as a key factor in neurodevelopment that influences the survival of cultured embryonic chick spinal sensory neurons. Subsequently, BDNF was shown to have important roles in learning and memory and synaptic plasticity. Specifically, BDNF is involved in the conversion of short-term memories to long-term memories in inhibitory avoidance training, reconsolidation of fear extinction (Alonso et al., 2002; Lu et al., 2011; Radiske et al., 2015) and the facilitation of longterm potentiation (LTP), a well-described electrophysiological correlate of learning and memory (Patterson et al., 1996; Lu et al, 2011). Preincubation of hippocampal slices from juvenile rats with BDNF led to LTP following theta-burst stimulation, suggesting that BDNF alters synaptic release properties (Figurov et al., 1996). BDNF treatment for 24 hours also increased the frequency of release in slice cultures from young rats, further suggesting changes in synaptic transmission following treatment with BDNF (Tyler and Pozzo-Miller, 2001). In parallel BDNF was shown to induce structural changes in neurons by increasing synapto- and dendridogenesis (Yoshii et al., 2007; Bednarek and Caroni 2011) which again correspond to changes in plasticity in response to various stimuli. Finally, via its protective influence on neural progenitors and promoting neuronal differentiation, BDNF is thought to be a major mediator of neurogenesis and cognition (Bath et al., 2012).

    Conversely, dysregulated BDNF secretion and/or signaling have been shown to be awry in a plethora of disease conditions ranging from schizophrenia, depression, and anorexia to autism. The known human Val to Met single nucleotide polymorphism alters plasticity in a mouse compared to wild-type littermates. This polymorphism occurs at nucleotide 196, resulting in a valine to methionine substitution (Val66Met) and is associated with reduced episodic memory and reduced hippocampal fMRI response in humans (Egan et al., 2003). BDNFMet/Met mice that model this mutation have reduced NMDA-dependent EPSP amplitude and impaired LTP (Ninan et al., 2010). Taken together, these studiesstrongly implicate that BDNF facilitates LTP and alters synaptic release as part of its mechanism of action and thus, that these functions of BDNF may be critical for healthy cognitive function.

    Much work has also been performed on understanding the molecular consequences of BDNF exposure, such as the pro-translation action of BDNF, i.e., in how it regulates the process and how it mediates local translation. BDNF binding to its cognate Tropomyosin-receptor kinase B (TrkB) or p75 neurotrophin receptor (p75NTR) usually activates canonical receptor tyrosine kinase cascade signaling to Ras-MEKERK1/2 pathways. It induces the Akt-mTORC1 and PLC gamma pathways all of which either individually or in concert mediate the multiple cellular effects of BDNF including transcription, translation, degradation and trafficking (Chao, 2003).

    Identification of proteins that are induced upon BDNF stimulation has been of particular interest, as they may lead to an understanding of the specificity of trophic factors that use similar signaling pathways and how they are altered in disease. It is here that one finds a rather large disconnect in the experimental systems that have been used to investigate the phenomenon. An overwhelming number of BDNF molecular studies have been performed in neuronal culture systems (Liao et al., 2007; Genheden et al., 2015). In contrast, the majority of the information on how BDNF modulates the synapse stems from experiments in slice electrophysiology where neurons have developed together in a spatially, temporally and molecularly restricted fashion (Kang et al., 1995; Scharfman et al., 1999). To name some of the difference between these two systems: 1) cultures form a single layer of largely homogenous cells that are separated from their developmental environment and re-plated as individual neurons that form random connections, while slices contain multiple layers that develop in a genetically-encoded spatial pattern. 2) Neurons in culture and mature brain slices are derived at dissimilar developmental time points (embryonic compared to adult). 3) Brain slices contain multiple cell-types, including neurons, glia, and endothelial cells, whereas neuronal cultures are largely made up of neurons. To date, over 15,000 studies have been performed on BDNF, and while these have increased knowledge on its role in development, learning and memory, and signaling cascades, the mechanism by which it modifies circuits to induce changes in plasticity and learning and memory in a mature circuit remains unclear. Hence there is a pressing need to investigate whether the BDNF translational response in a slice is identical or equivalent to that in a dish. Since BDNF is a large, very basic protein that does not readily penetrate tissues, the application of BDNF was problematic in clinical trials (Thoenen and Sendtner 2002).

    In Bowling-Bhattacharya et al., 2016, we adapted existing technique for measuring global translation rates (BONCAT/ FUNCAT) and proteomic dynamics (SILAC) to ask how does an adult hippocampal slice as whole respond to BDNF and which proteins were newly synthesized following 1 hour of BDNF treatment. This adaptation of the two techniques was needed since they were both tailored to and heretofore used in culture systems. BONLAC (BioOrthogonal Non-canonical Labeling of Amino acids in Circuits or Culture) allowed for the isolation of the de novo proteome (BONCAT) and the direct quantitation and comparison between the BDNF and control treated groups (SILAC). The most apparent and initial observation from just measuring the translation response in slices was that there was a gradation in response of the slice from the outside to inside layers. The BDNF-induced uptick in translation was previous noted in studies that used radioactive methionine labeling and BONCAT in cultured neurons and cortical homogenates (Takei et al., 2004; Dieterich et al., 2010). The application of FUNCAT allowed for the visualization of translation throughout layers of the slice, as well as soma and dendrites. Compared to CA1, the dentate gyrus (DG) showed a higher response to BDNF-mediated protein synthesis. Whether this response might be enhanced in newly generated neurons in the DG remains to be explored. Not shown in the paper was the observation we made that incubating slices for shorter times, caused a partial wave of protein synthesis to propagate in the cell layers which did not reach the center. Also, the way BDNF is applied to cell cultures and slices (slow or fast) has been found to influence downstream signal transduction differently (Ji et al., 2010). This has important consequence in interpreting the electrophysiological data gleaned from slices. Typically in an LTP experiment, BDNF is applied for 10-15 minutes and the cell populations responding in evoked field EPSC or miniature EPSPs are thought to be the layers immediately beneath the exterior of the slice and not the mid most layer. This is empirically measured at the response in mV that is considered acceptable for a given baseline. The fact that this correlates well with the cell layers where we see maximal BDNF evoked response is a cell biological correlate that is not possible when the experimental system is a monolayer of neurons. A noteworthy fact is that the high affinity of BDNF to existing TrkB and p75NTRon the hippocampal slice (Rodriguez-Tebar and Barde, 1988) precludes actual penetration of the ligand past the first 2-3 cell layers. As a result the response seen in the mid-most part of the slice is likely due to evoked signaling cascades or BDNF-induced BDNF release. The proteomic analyses in Bowling-Bhattacharya et al. (2016) does detect BDNF synthesis in slices within the time period of the experiment, which lends support to the notion.

    A compelling finding of the work was for the first time visualizing components other than neurons responding to BDNF stimulation. While we did not use cell-type specific markers to isolate neuronal vs. glial cells (which can be performed in future studies using a new BONCAT techniques tom Dieck et al., 2015) we saw consistently structures that were either blood vessels or capillaries that were responding to BDNF in the hippocampal slice. The notion that BDNF impacts non-neuronal cells is not new, but work supporting this has been done in pure cultures of glia or pericytes. BDNF,a pro-angiogenic factor has been established by studies like Kermani and Hempstead (2007) and Kermani et al. (2005). However candidate proteins that are upregulated due to BDNF in an endothelial population in a slice were unknown.

    Figure 1 Schematic of proposed pre-synapse before and after brain-derived neurotrophic factor (BDNF) treatment.

    Table 1 Proteins listed in blood-related Gene Ontology categories

    BONLAC is a combination of BONCAT and SILAC proteomic techniques that enriches for candidates that are synthesized within a specific time window in response to a stimulus. In this paper, Bowling-Bhattacharya et al. (2016) have adapted it to the intact slice. This powerful technique identified over 200 protein candidates altered with BDNF treatment out of over 2,000 measured proteins, a feat that would have been prohibitively difficult without this combinatorial technique, as other techniques either do not allow for direct quantitation or for the isolation and live labeling of de novo protein synthesis. The most prominent gene ontology classes involved calcium signaling, neurotransmission and secretion with the validated candidates Synaptotagmin-7 (Syt7), Voltage-Gated Calcium Channel Subunit Alpha-2/Delta-1 (Cacna2d1), and Sortilin-1 (Sort1), featuring prominently in these categories. These three candidates had not been previously shown to be directly regulated by acute BDNF exposure, and were therefore, novel. Syt7 and Cacna2d1 are strongly associated with alterations in synaptic release, while Sort1 is associated with secretion across different cell types. Together, they may indicate a shift in synaptic release in the hippocampus following acute BDNF treatment (Figure 1). Genetic ablation studies have detailed a role for Syt7 in clamping synchronous release, vesicle replenishment and asynchronous release (Bacaj et al., 2013; Liu et al., 2014; Weber et al., 2014; Luo et al., 2015). Its upregulation following BDNF suggests a change in synaptic release properties may play a role in the mechanism of action of BDNF.

    Changes in the abundance of Cacna2d1 also suggest changes in synaptic transmission. Because voltage-gated calcium channels reside in the active zone of the pre-synapse and regulate Calcium (Ca2+) influx, it has long been hypothesized that they are involved in synaptic release. Cacna2d1 is a voltage-gated calcium channel subunit, and has been previously been shown to increase the probability of neurotransmitter release and to prevent negative regulation of this release by chelating Ca2+(Arikkath and Campbell, 2003; Hoppa et al., 2012). In addition, mutations in the CACNA2D1 gene in humans is associated with epilepsy and intellectual disability, further implicating Cacna2d1 as having an important role in regulating synaptic function. Together, these data strongly implicate that BDNF treatment-induced changes in Cacna2d1 may result in increased synaptic release and changes in Ca2+dynamics.

    Although the validation of candidates focused on those involved in synaptic release, we also obtained a highly enriched gene ontology class which included KEGG pathways for cardiac muscle contraction, hypertrophic cardiomyopathy,dilated cardiomyopathy and arrythmogenic right ventricular cardiomyopathy (Supplementary Table S2 of Bowling and Bhattacharya et al., 2016) with an enrichment score of 4.32, which is higher than the regulation of actin cytoskeleton and calcium binding group at 3.95 and 3.87 respectively. Of the top 10 most regulated candidates from the screen only 3 are known to be expressed in neurons only. Interestingly proteins like CACNAG, Necab1/2, Mien1, Me1 are known to be highly expressed in the heart and muscles with protein forms known to express in the brain. Of the 3 validated candidates, Sortilin 1 is a known mediator of endocytosis in endothelial cells (Jin et al., 2008; Prabhakaran et al., 2012). Sort1 also indicates changes in neuronal secretion and synaptic plasticity, as it has been previously shown to control both BDNF trafficking throughout the cell and its activity-dependent secretion (Chen et al., 2005). However it is also of interest as it is an important protein in lysosomal degradation, and trafficking of receptors to the synapse, including Trks (reviewed in Lane et al., 2012). Although Sort1 has been heavily implicated in BDNF secretion and in response to synaptic actions, this is the first known demonstration of BDNF regulating Sort1 expression. Because Sort1 regulates activity-dependent BDNF secretion, its downregulation following BDNF treatment may indicate negative feedback of further BDNF release and alterations in Trk trafficking, however it bears further investigation.

    In addition to proteins with synaptic plasticity and muscle associations, the gene ontology analysis indicated proteins associate with blood cell signaling and development (Table 1), consistent with the previously stated observation of increased FUNCAT in blood vessels. These data are interesting as the bulk of the studies of synaptic plasticity in the brain have centered on the effects of neurons in synaptic plasticity, very little attention has been paid to other cell types in the brain such as the different forms of glia and the blood vessels. For instance, it is well established that changes in blood flow and oxygen highly correlated to brain activity, as this is the basis of functional magnetic resonant imaging (fMRI) (reviewed in Logothetis, 2003). Therefore, despite the neuronal focus of synaptic plasticity, there do appear to be changes in blood that correspond to neuronal activity in the brain.

    There are additional data suggesting a more direct relationship between the blood and synaptic plasticity in addition to a correlation between changes in the blood and neuronal activity in the brain. Blood and plasma from young mice has been shown to improve learning and memory performance and spine density in older mice, whereas denatured plasma did not (Villeda et al., 2014). This is consistent with other studies showing that poor blood flow in the hippocampus correlated with poor behavioral learning performance (Manschot et al., 2002). The evidence of interaction between blood flow and potentially important other protein-based factors and cognitive function has been heavily based upon fMRI and blood supplement and behavior studies. However, the precise role that BDNF may play in this function remains a question.

    One way that BDNF interplays with the vascular system is through its receptors on blood vessels. BDNF can interact with multiple receptors, including its primary receptor TrkB, its truncated isoforms and p75NTR. TrkB has been shown to be present in blood cells (genecards.org, Nassenstein et al., 2006), blood vessels (Wagner et al., 2005), and in pericytes that help form the blood-brain barrier (Anastasia et al., 2014). TrkB signaling is important for the development of vasculature as disruption of TrkB leads to improper and sparse development of blood vessels and that signaling through it can stabilize them (Wagner et al., 2005; Anastasia et al., 2014). Pericytes also perform a critical support function in the blood-brain barrier where they regulate endothelial cells, astrocytes, and blood-brain barrier permeability (Armulik et al., 2010). TrkB expression can also be found in other non-neuronal cells such as oligodendrocytes and astrocytes (Frisen et al., 1993), further suggesting a non-exclusive action on neurons following BDNF treatment. With the noted difference in BDNF-induced protein synthesis in the brain, and these previous studies, it begs the question of whether BDNF may play a role in the relationship between non-neuronal cells and synaptic activity.

    Summary

    The findings of Bowling and Bhattacharya et al. (2016) strongly suggest new molecular targets of BDNF action and suggest new hypotheses of the mechanism of BDNFs effect on synaptic plasticity (Figure 1). In addition, it was noted that non-neuronal associated proteins were altered with BDNF treatment suggesting that the circuit affected by BDNF does not only include neurons, but instead builds on previous evidence that interaction with the blood and other non-neuronal cells may also be important for synaptic plasticity. This study provides new data that is important in understanding the mechanisms of action of BDNF and shapes new research questions for the field to finally answer the question of how a small ligand such as BDNF can so profoundly alter circuits and be responsible for large-scale changes in learning and memory.

    Alonso M, Vianna MR, Depino AM, Mello e Souza T, Pereira P, Szapiro G, Viola H, Pitossi F, Izquierdo I, Medina JH (2002) BDNF-triggered events in the rat hippocampus are required for both short- and longterm memory formation. Hippocampus 12:551-560.

    Anastasia A, Deinhardt K, Wang S, Martin L, Nichol D, Irmady K, Trinh J, Parada L, Rafii S, Hempstead BL, Kermani P (2014) Trkb signaling in pericytes is required for cardiac microvessel stabilization. PLoS One 9:e87406.

    Arikkath J, Campbell KP (2003) Auxiliary subunits: essential components of the voltage-gated calcium channel complex. Curr Opin Neurobiol 13:298-307.

    Armulik A, Genové G, M?e M, Nisancioglu MH, Wallgard E, Niaudet C, He L, Norlin J, Lindblom P, Strittmatter K, Johansson BR, Betsholtz C (2010) Pericytes regulate the blood-brain barrier. Nature 468:557-561.

    Bacaj T, Wu D, Yang X, Morishita W, Zhou P, Xu W, Malenka RC, Südhof TC (2013) Synaptotagmin-1 and synaptotagmin-7 trigger synchronous and asynchronous phases of neurotransmitter release. Neuron 80:947-959.

    Barde YA, Edgar D, Thoenen H (1982) Purification of a new neurotrophic factor from mammalian brain. EMBO J 1:549-553.

    Bath KG, Akins MR, Lee FS (2012) BDNF control of adult SVZ neurogenesis. Dev Psychobiol 54:578-589.

    Bednarek E, Caroni P (2011) β-Adducin is required for stable assembly of new synapses and improved memory upon environmental enrichment. Neuron 69:1132-1146.

    Bowling H, Bhattacharya A, Zhang G, Lebowitz JZ, Alam D, Smith PT, Kirshenbaum K, Neubert TA, Vogel C, Chao MV, Klann E (2016) BONLAC: A combinatorial proteomic technique to measure stimulus-induced translational profiles in brain slices. Neuropharmacology 100:76-89.

    Chao MV (2003) Neurotrophins and their receptors: a convergence point for many signalling pathways. Nat Rev Neurosci 4:299-309.

    Chen ZY, Ieraci A, Teng H, Dall H, Meng CX, Herrera DG, Nykjaer A, Hempstead BL, Lee FS (2005) Sortilin controls intracellular sorting of brain-derived neurotrophic factor to the regulated secretory pathway. J Neurosci 25:6156-6166.

    Dieterich DC, Hodas JJ, Gouzer G, Shadrin IY, Ngo JT, Triller A, Tirrell DA, Schuman EM (2010) In situ visualization and dynamics of newly synthesized proteins in rat hippocampal neurons. Nat Neurosci 13:897-905.

    Egan MF, Kojima M, Callicott JH, Goldberg TE, Kolachana BS, Bertolino A, Zaitsev E, Gold B, Goldman D, Dean M, Lu B, Weinberger DR (2003) The BDNF val66met polymorphism affects activity-dependent secretion of BDNF and human memory and hippocampal function. Cell 112:257-269.

    Figurov A, Pozzo-Miller LD, Olafsson P, Wang T, Lu B (1996) Regulation of synaptic responses to high-frequency stimulation and LTP by neurotrophins in the hippocampus. Nature 381:706-709.

    Frisén J, Verge VM, Fried K, Risling M, Persson H, Trotter J, H?kfelt T, Lindholm D (1993) Characterization of glial trkB receptors: differential response to injury in the central and peripheral nervous systems. Proc Natl Acad Sci U S A 90:4971-4975.

    Genheden M, Kenney JW, Johnston HE, Manousopoulou A, Garbis SD, Proud CG (2015) BDNF stimulation of protein synthesis in cortical neurons requires the MAP kinase-interacting kinase MNK1. J Neurosci 35:972-984.

    Hoppa MB, Lana B, Margas W, Dolphin AC, Ryan TA (2012) α2δ expression sets presynaptic calcium channel abundance and release probability. Nature 486:122-125.

    Ji Y, Lu Y, Yang F, Shen W, Tang TT, Feng L, Duan S, Lu B (2010) Acute and gradual increases in BDNF concentrations elicit distinct signaling and functions in neurons. Nat Neurosci 13:302-309.

    Kang H, Schuman EM (1995) Long-lasting neurotrophin-induced enhancement of synaptic transmission in the adult hippocampus. Science 267:1658-1662.

    Kermani P, Hempstead B (2007) Brain-derived neurotrophic factor: a newly described mediator of angiogenesis. Trends Cardiovasc Med 17:140-143.

    Kermani P, Rafii D, Jin DK, Whitlock P, Schaffer W, Chiang A, Vincent L, Friedrich M, Shido K, Hackett NR, Crystal RG, Rafii S, Hempstead BL (2005) Neurotrophins promote revascularization by local recruitment of TrkB+ endothelial cells and systemic mobilization of hematopoietic progenitors. J Clin Invest 115:653-663.

    Lane RF, St George-Hyslop P, Hempstead BL, Small SA, Strittmatter SM, Gandy S (2012) Vps10 family proteins and the retromer complex in aging-related neurodegeneration and diabetes. J Neurosci 32:14080-14086.

    Liao L, Pilotte J, Xu T, Wong CC, Edelman GM, Vanderklish P, Yates JR 3rd (2007) BDNF induces widespread changes in synaptic protein content and up-regulates components of the translation machinery: an analysis using high-throughput proteomics. J Proteome Res 6:1059-1071.

    Liu H, Bai H, Hui E, Yang L, Evans CS, Wang Z, Kwon SE, Chapman ER (2014) Synaptotagmin 7 functions as a Ca2+-sensor for synaptic vesicle replenishment. Elife 3:e01524.

    Logothetis NK (2003) The underpinnings of the BOLD functional magnetic resonance imaging signal. J Neurosci 23:3963-3971.

    Lu Y, Ji Y, Ganesan S, Schloesser R, Martinowich K, Sun M, Mei F, Chao MV, Lu B (2011) TrkB as a potential synaptic and behavioral tag. J Neurosci 31:11762-11771.

    Luo F, Bacaj T, Südhof TC (2015) Synaptotagmin-7 is essential for Ca2+-triggered delayed asynchronous release but not for Ca2+-dependent vesicle priming in retinal ribbon synapses. J Neurosci 35:11024-11033.

    Manschot SM, Biessels GJ, Cameron NE, Cotter MA, Kamal A, Kappelle LJ, Gispen WH (2003) Angiotensin converting enzyme inhibition partially prevents deficits in water maze performance, hippocampal synaptic plasticity and cerebral blood flow in streptozotocin-diabetic rats. Brain Res 966:274-282.

    Nassenstein C, M?hring UH, Luttmann W, Virchow JC Jr, Braun A (2006) Differential expression of the neurotrophin receptors p75NTR, TrkA, TrkB and TrkC in human peripheral blood mononuclear cells. Exp Toxicol Pathol 57:55-63.

    Ninan I, Bath KG, Dagar K, Perez-Castro R, Plummer MR, Lee FS, Chao MV (2010) The BDNF Val66Met polymorphism impairs NMDA receptor-dependent synaptic plasticity in the hippocampus. J Neurosci 30:8866-8870.

    Patterson SL, Abel T, Deuel TA, Martin KC, Rose JC, Kandel ER (1996) Recombinant BDNF rescues deficits in basal synaptic transmission and hippocampal LTP in BDNF knockout mice. Neuron 16:1137-1145.

    Prabakaran T, Nielsen R, Satchell SC, Mathieson PW, Feldt-Rasmussen U, S?rensen SS, Christensen EI (2012) Mannose 6-phosphate receptor and sortilin mediated endocytosis of α-galactosidase A in kidney endothelial cells. PLoS One 7:e39975.

    Radiske A, Rossato JI, K?hler CA, Gonzalez MC, Medina JH, Cammarota M (2015) Requirement for BDNF in the reconsolidation of fear extinction. J Neurosci 35:6570-6574.

    Rodriguez-Tébar A, Barde YA (1988) Binding characteristics of brain-derived neurotrophic factor to its receptors on neurons from the chick embryo. J Neurosci 8:3337-3342.

    Scharfman HE, Goodman JH, Sollas AL (1999) Actions of brain-derived neurotrophic factor in slices from rats with spontaneous seizures and mossy fiber sprouting in the dentate gyrus. J Neurosci 19:5619-5631.

    Takei N, Inamura N, Kawamura M, Namba H, Hara K, Yonezawa K, Nawa H (2004) Brain-derived neurotrophic factor induces mammalian target of rapamycin-dependent local activation of translation machinery and protein synthesis in neuronal dendrites. J Neurosci 24:9760-9769.

    Thoenen H., Sendtner M (2002) Neurotrophins: from enthusiastic expectations through sobering experiences to rational therapeutic approaches. Nat Neurosci 5:1046-1050.

    tom Dieck S, Kochen L, Hanus C, Heumüller M, Bartnik I, Nassim-Assir B, Merk K, Mosler T, Garg S, Bunse S, Tirrell DA, Schuman EM (2015) Direct visualization of newly synthesized target proteins in situ. Nat Methods 12:411-414.

    Tyler WJ, Pozzo-Miller LD (2001) BDNF enhances quantal neurotransmitter release and increases the number of docked vesicles at the active zones of hippocampal excitatory synapses. J Neurosci 21:4249-4258.

    Villeda SA, Plambeck KE, Middeldorp J, Castellano JM, Mosher KI, Luo J, Smith LK, Bieri G, Lin K, Berdnik D, Wabl R, Udeochu J, Wheatley EG, Zou B, Simmons DA, Xie XS, Longo FM, Wyss-Coray T (2014) Young blood reverses age-related impairments in cognitive function and synaptic plasticity in mice. Nat Med 20:659-663.

    Wagner N, Wagner KD, Theres H, Englert C, Schedl A, Scholz H (2005) Coronary vessel development requires activation of the TrkB neurotrophin receptor by the Wilms’ tumor transcription factor Wt1. Genes Dev 19:2631-2642.

    Weber JP, Toft-Bertelsen TL, Mohrmann R, Delgado-Martinez I, S?rensen JB (2014) Synaptotagmin-7 is an asynchronous calcium sensor for synaptic transmission in neurons expressing SNAP-23. PLoS One 9:e114033.

    Yoshii A, Constantine-Paton M (2007) BDNF induces transport of PSD-95 to dendrites through PI3K-AKT signaling after NMDA receptor activation. Nat Neurosci 10:702-711.

    10.4103/1673-5374.179031 http://www.nrronline.org/

    How to cite this article: Bowling H, Bhattacharya A, Klann E, Chao MV (2016) Deconstructing brain-derived neurotrophic factor actions in adult brain circuits to bridge an existing informational gap in neuro-cell biology. Neural Regen Res 11(3):363-367.

    Funding: HB and EK were supported by NIH grants NS034007 and NS047384. MVC was supported by NIH grants NS21072, and HD23315. AB was supported by funds from the Department of Biotechnology, Government of India and the Shanta Wadhwani Foundation.

    *Correspondence to: Heather Bowling, Ph.D., or Aditi Bhattacharya, Ph.D., aditi@instem.res.in or hlb248@nyu.edu

    中文精品一卡2卡3卡4更新| 男人操女人黄网站| 99热网站在线观看| 亚洲精品美女久久久久99蜜臀 | av不卡在线播放| 日本午夜av视频| 欧美在线黄色| 一区二区av电影网| 看免费成人av毛片| 久久热在线av| 看免费成人av毛片| 久久久精品区二区三区| 精品国产乱码久久久久久小说| 久久久久国产精品人妻一区二区| 亚洲伊人久久精品综合| 18禁国产床啪视频网站| a 毛片基地| 国产精品亚洲av一区麻豆| 最近中文字幕2019免费版| 亚洲国产精品国产精品| 欧美大码av| 亚洲天堂av无毛| 99国产综合亚洲精品| 人妻 亚洲 视频| 又紧又爽又黄一区二区| 欧美少妇被猛烈插入视频| 91国产中文字幕| 国产精品一区二区在线观看99| 国产视频一区二区在线看| 精品第一国产精品| 欧美日韩福利视频一区二区| 美女脱内裤让男人舔精品视频| 久久人人97超碰香蕉20202| 久久精品国产综合久久久| 国产激情久久老熟女| 日本av免费视频播放| 99精国产麻豆久久婷婷| 看十八女毛片水多多多| 国产爽快片一区二区三区| 亚洲色图综合在线观看| 美女主播在线视频| 国产福利在线免费观看视频| 日韩,欧美,国产一区二区三区| 国产精品一二三区在线看| 日日夜夜操网爽| 又粗又硬又长又爽又黄的视频| 男女边摸边吃奶| 亚洲中文av在线| 日韩欧美一区视频在线观看| 另类精品久久| 亚洲欧美精品综合一区二区三区| 免费av中文字幕在线| 别揉我奶头~嗯~啊~动态视频 | 99久久99久久久精品蜜桃| 亚洲精品国产一区二区精华液| 国产亚洲欧美在线一区二区| 黄网站色视频无遮挡免费观看| 久久久精品94久久精品| 色精品久久人妻99蜜桃| 一区福利在线观看| 亚洲成人免费电影在线观看 | 日韩免费高清中文字幕av| 国产精品亚洲av一区麻豆| 久久性视频一级片| 亚洲九九香蕉| a级片在线免费高清观看视频| 男人爽女人下面视频在线观看| 婷婷丁香在线五月| 香蕉国产在线看| videosex国产| 巨乳人妻的诱惑在线观看| 亚洲五月色婷婷综合| 91老司机精品| 国产一区二区在线观看av| 男女边摸边吃奶| 90打野战视频偷拍视频| 久热这里只有精品99| 18禁观看日本| 9热在线视频观看99| 脱女人内裤的视频| 91麻豆av在线| 欧美日韩福利视频一区二区| 日本a在线网址| 宅男免费午夜| 男女午夜视频在线观看| 男人爽女人下面视频在线观看| 国产精品人妻久久久影院| 亚洲天堂av无毛| 国产精品久久久久久人妻精品电影 | 各种免费的搞黄视频| 天天操日日干夜夜撸| 亚洲视频免费观看视频| 老熟女久久久| 侵犯人妻中文字幕一二三四区| 多毛熟女@视频| 亚洲成国产人片在线观看| 欧美日韩综合久久久久久| 久热这里只有精品99| 亚洲成人免费电影在线观看 | 午夜福利视频在线观看免费| 一二三四在线观看免费中文在| 青青草视频在线视频观看| 精品久久久久久电影网| 久久性视频一级片| 国产免费福利视频在线观看| 久久av网站| 国产精品久久久av美女十八| 中文字幕制服av| 精品少妇久久久久久888优播| 国产精品成人在线| 五月开心婷婷网| 天天躁夜夜躁狠狠躁躁| 亚洲欧美中文字幕日韩二区| 亚洲精品av麻豆狂野| 免费不卡黄色视频| 久久精品亚洲av国产电影网| 人体艺术视频欧美日本| 男女免费视频国产| 日本黄色日本黄色录像| www.自偷自拍.com| 一级黄片播放器| 久久青草综合色| 777米奇影视久久| 中文欧美无线码| 久久女婷五月综合色啪小说| 免费在线观看完整版高清| 国产淫语在线视频| 国产野战对白在线观看| 亚洲精品一区蜜桃| 少妇粗大呻吟视频| 午夜福利影视在线免费观看| 桃花免费在线播放| 亚洲伊人久久精品综合| 久久这里只有精品19| 国产国语露脸激情在线看| 国产精品国产三级专区第一集| 亚洲中文av在线| 亚洲国产日韩一区二区| 日韩电影二区| 精品人妻一区二区三区麻豆| 成年av动漫网址| 999久久久国产精品视频| 一级毛片黄色毛片免费观看视频| 欧美av亚洲av综合av国产av| 日本五十路高清| 亚洲国产成人一精品久久久| 啦啦啦啦在线视频资源| 日韩中文字幕欧美一区二区 | 久久亚洲精品不卡| 涩涩av久久男人的天堂| 国产一级毛片在线| 下体分泌物呈黄色| 亚洲成人手机| 国产女主播在线喷水免费视频网站| av福利片在线| 久久久久视频综合| 你懂的网址亚洲精品在线观看| 亚洲精品中文字幕在线视频| 无限看片的www在线观看| 久久 成人 亚洲| 中文字幕av电影在线播放| 免费在线观看日本一区| 我的亚洲天堂| 脱女人内裤的视频| 国产视频首页在线观看| 久久久国产一区二区| 91麻豆av在线| 欧美日韩亚洲国产一区二区在线观看 | av天堂久久9| 久久久久视频综合| 久久免费观看电影| 亚洲欧美精品自产自拍| 久久久国产精品麻豆| av天堂在线播放| 欧美国产精品va在线观看不卡| 夫妻午夜视频| 久久久国产一区二区| 亚洲综合色网址| 自拍欧美九色日韩亚洲蝌蚪91| 99热国产这里只有精品6| 99热国产这里只有精品6| 久久这里只有精品19| 啦啦啦在线观看免费高清www| 人人妻人人澡人人看| 亚洲av成人精品一二三区| 性少妇av在线| 久久久久国产一级毛片高清牌| 桃花免费在线播放| 狂野欧美激情性xxxx| 亚洲综合色网址| 国产片内射在线| 人人澡人人妻人| 亚洲色图综合在线观看| av国产久精品久网站免费入址| 亚洲精品久久午夜乱码| 久久久久久久精品精品| 国产1区2区3区精品| 国产1区2区3区精品| 一本大道久久a久久精品| 国产精品久久久久久精品电影小说| 不卡av一区二区三区| 老司机在亚洲福利影院| 国产日韩欧美视频二区| 免费在线观看影片大全网站 | 悠悠久久av| 久久亚洲精品不卡| 国产高清不卡午夜福利| 免费高清在线观看日韩| 狠狠婷婷综合久久久久久88av| 大香蕉久久网| 精品国产一区二区三区久久久樱花| 看十八女毛片水多多多| 黄色视频不卡| 人人妻人人澡人人爽人人夜夜| 久久久欧美国产精品| 国产精品久久久av美女十八| 人人妻,人人澡人人爽秒播 | 亚洲自偷自拍图片 自拍| 黄色怎么调成土黄色| 成人手机av| 国产三级黄色录像| 极品少妇高潮喷水抽搐| 一级毛片我不卡| 一级毛片我不卡| 两个人看的免费小视频| 少妇的丰满在线观看| 久久99精品国语久久久| 亚洲精品自拍成人| 亚洲av国产av综合av卡| 国产精品免费视频内射| 国产av国产精品国产| 国产精品一区二区在线不卡| e午夜精品久久久久久久| 久久99精品国语久久久| 日韩,欧美,国产一区二区三区| 欧美变态另类bdsm刘玥| 91字幕亚洲| 欧美成人精品欧美一级黄| 人人妻,人人澡人人爽秒播 | 人妻一区二区av| 99re6热这里在线精品视频| 亚洲视频免费观看视频| 精品人妻一区二区三区麻豆| 男人爽女人下面视频在线观看| 在线av久久热| 色94色欧美一区二区| 黄片小视频在线播放| 性高湖久久久久久久久免费观看| 国产又爽黄色视频| 婷婷色av中文字幕| 99国产精品一区二区三区| 我要看黄色一级片免费的| 9191精品国产免费久久| 日日爽夜夜爽网站| 少妇猛男粗大的猛烈进出视频| 久久久精品国产亚洲av高清涩受| 亚洲av欧美aⅴ国产| 亚洲精品久久久久久婷婷小说| 视频区欧美日本亚洲| 尾随美女入室| 成人午夜精彩视频在线观看| 国产免费又黄又爽又色| 亚洲精品美女久久av网站| 人人妻人人爽人人添夜夜欢视频| 丝袜喷水一区| 亚洲欧美色中文字幕在线| 成人午夜精彩视频在线观看| 午夜影院在线不卡| 亚洲国产毛片av蜜桃av| 国产真人三级小视频在线观看| 99热全是精品| 亚洲五月色婷婷综合| 丝袜脚勾引网站| 久久人人97超碰香蕉20202| 亚洲精品第二区| 秋霞在线观看毛片| 亚洲中文字幕日韩| 欧美+亚洲+日韩+国产| 国产精品久久久久久精品古装| 丝袜脚勾引网站| 亚洲五月色婷婷综合| av天堂在线播放| 黑人巨大精品欧美一区二区蜜桃| 欧美成人午夜精品| av天堂在线播放| av在线app专区| 青春草视频在线免费观看| 十八禁网站网址无遮挡| 19禁男女啪啪无遮挡网站| 国产欧美日韩一区二区三 | 亚洲色图 男人天堂 中文字幕| 国产福利在线免费观看视频| 亚洲欧美精品自产自拍| 久久免费观看电影| 嫁个100分男人电影在线观看 | 制服人妻中文乱码| 夫妻午夜视频| av一本久久久久| 国产精品人妻久久久影院| 母亲3免费完整高清在线观看| 精品亚洲成a人片在线观看| 欧美精品亚洲一区二区| 我的亚洲天堂| 女人精品久久久久毛片| 国产在线免费精品| 尾随美女入室| 99久久人妻综合| 丰满少妇做爰视频| 国产成人一区二区三区免费视频网站 | 免费人妻精品一区二区三区视频| 亚洲国产看品久久| 午夜两性在线视频| 亚洲av综合色区一区| h视频一区二区三区| 免费看不卡的av| 午夜免费男女啪啪视频观看| 久久国产精品男人的天堂亚洲| 50天的宝宝边吃奶边哭怎么回事| 老鸭窝网址在线观看| 18禁国产床啪视频网站| 免费人妻精品一区二区三区视频| 亚洲男人天堂网一区| 99re6热这里在线精品视频| 高清黄色对白视频在线免费看| 大话2 男鬼变身卡| 中国美女看黄片| 久久九九热精品免费| 国产成人91sexporn| 久久九九热精品免费| 免费在线观看黄色视频的| 日本wwww免费看| 亚洲七黄色美女视频| 99国产精品一区二区蜜桃av | 大型av网站在线播放| 精品一区二区三区四区五区乱码 | 国产在线视频一区二区| 老汉色av国产亚洲站长工具| 日韩熟女老妇一区二区性免费视频| 免费女性裸体啪啪无遮挡网站| 亚洲av日韩精品久久久久久密 | 在线天堂中文资源库| 九草在线视频观看| 欧美精品一区二区免费开放| 国产高清国产精品国产三级| 国产日韩一区二区三区精品不卡| 欧美 亚洲 国产 日韩一| 一本大道久久a久久精品| 亚洲欧美日韩高清在线视频 | 国产亚洲欧美在线一区二区| 成人亚洲欧美一区二区av| 日韩,欧美,国产一区二区三区| 精品国产一区二区三区四区第35| 亚洲精品一二三| 国产免费现黄频在线看| 国产日韩欧美亚洲二区| h视频一区二区三区| 久久久久久人人人人人| 日韩 欧美 亚洲 中文字幕| 国产精品一区二区在线不卡| 我的亚洲天堂| www.精华液| 日本vs欧美在线观看视频| 成年女人毛片免费观看观看9 | 丰满人妻熟妇乱又伦精品不卡| 亚洲欧洲国产日韩| 亚洲免费av在线视频| 亚洲欧洲精品一区二区精品久久久| 一本—道久久a久久精品蜜桃钙片| 亚洲av欧美aⅴ国产| 亚洲 欧美一区二区三区| 国产真人三级小视频在线观看| 国产欧美日韩一区二区三 | 丰满饥渴人妻一区二区三| 国产精品99久久99久久久不卡| 97人妻天天添夜夜摸| 在线观看www视频免费| 国产爽快片一区二区三区| 美女午夜性视频免费| 国产亚洲欧美在线一区二区| 看免费成人av毛片| 午夜福利在线免费观看网站| 中国美女看黄片| 国产激情久久老熟女| 久久人人爽av亚洲精品天堂| 国语对白做爰xxxⅹ性视频网站| 妹子高潮喷水视频| 青春草视频在线免费观看| 欧美黑人欧美精品刺激| 国产av精品麻豆| 久久久精品国产亚洲av高清涩受| 少妇的丰满在线观看| 黄片播放在线免费| 国产精品久久久久久精品古装| 一边摸一边做爽爽视频免费| 黑人巨大精品欧美一区二区蜜桃| 在线精品无人区一区二区三| 天堂中文最新版在线下载| www.av在线官网国产| 久久中文字幕一级| 日韩av不卡免费在线播放| 人妻一区二区av| 最近中文字幕2019免费版| 国产黄色视频一区二区在线观看| av在线app专区| 亚洲第一av免费看| 尾随美女入室| 国产成人一区二区在线| 国产熟女欧美一区二区| 老司机午夜十八禁免费视频| 亚洲国产中文字幕在线视频| 欧美日韩精品网址| 天天躁狠狠躁夜夜躁狠狠躁| 大陆偷拍与自拍| 这个男人来自地球电影免费观看| 婷婷色综合大香蕉| 激情五月婷婷亚洲| 九色亚洲精品在线播放| 每晚都被弄得嗷嗷叫到高潮| 新久久久久国产一级毛片| 男人舔女人的私密视频| 国产亚洲欧美在线一区二区| 满18在线观看网站| 中文欧美无线码| 99热网站在线观看| 久久久久精品国产欧美久久久 | 天天躁狠狠躁夜夜躁狠狠躁| 久久久精品区二区三区| 日本欧美视频一区| 在线天堂中文资源库| 日韩制服骚丝袜av| 一级毛片女人18水好多 | 精品亚洲成国产av| 久久精品熟女亚洲av麻豆精品| 丝袜美腿诱惑在线| 老鸭窝网址在线观看| 菩萨蛮人人尽说江南好唐韦庄| 中文字幕最新亚洲高清| 五月天丁香电影| 丝袜喷水一区| 蜜桃在线观看..| 免费观看人在逋| www.精华液| 在线 av 中文字幕| 男人舔女人的私密视频| 亚洲精品久久久久久婷婷小说| 青春草亚洲视频在线观看| 国产无遮挡羞羞视频在线观看| 捣出白浆h1v1| 别揉我奶头~嗯~啊~动态视频 | 国产成人影院久久av| 两个人看的免费小视频| 天天添夜夜摸| 91精品三级在线观看| 亚洲欧洲国产日韩| 久久 成人 亚洲| av线在线观看网站| 久久狼人影院| 国产精品 国内视频| 日本猛色少妇xxxxx猛交久久| 日日爽夜夜爽网站| 亚洲少妇的诱惑av| 黑丝袜美女国产一区| 久久性视频一级片| 免费久久久久久久精品成人欧美视频| 亚洲精品日本国产第一区| 国产一级毛片在线| 国产又色又爽无遮挡免| 久久天躁狠狠躁夜夜2o2o | 黄色毛片三级朝国网站| 国产精品久久久久久精品古装| 免费黄频网站在线观看国产| 精品少妇黑人巨大在线播放| 亚洲七黄色美女视频| 可以免费在线观看a视频的电影网站| 色视频在线一区二区三区| 日韩一区二区三区影片| 90打野战视频偷拍视频| 亚洲色图 男人天堂 中文字幕| 日日摸夜夜添夜夜爱| 婷婷色av中文字幕| 成人午夜精彩视频在线观看| 1024视频免费在线观看| 两人在一起打扑克的视频| 久久久久久久精品精品| 一边摸一边抽搐一进一出视频| 秋霞在线观看毛片| 午夜视频精品福利| 人妻一区二区av| 欧美黄色淫秽网站| 91九色精品人成在线观看| av欧美777| 国产精品久久久久久人妻精品电影 | 精品国产超薄肉色丝袜足j| 亚洲第一av免费看| 久久99一区二区三区| 制服人妻中文乱码| 麻豆乱淫一区二区| 天天影视国产精品| 国产三级黄色录像| 最新的欧美精品一区二区| 中文字幕精品免费在线观看视频| 亚洲国产成人一精品久久久| www.av在线官网国产| 亚洲伊人久久精品综合| 韩国高清视频一区二区三区| 日韩欧美一区视频在线观看| 国产熟女欧美一区二区| 国产成人一区二区三区免费视频网站 | 中文字幕高清在线视频| 久久人人97超碰香蕉20202| 九草在线视频观看| 亚洲av成人精品一二三区| 夫妻午夜视频| 狂野欧美激情性bbbbbb| 大香蕉久久网| 国产黄频视频在线观看| 国产精品亚洲av一区麻豆| 人人澡人人妻人| 蜜桃国产av成人99| 欧美精品人与动牲交sv欧美| 亚洲精品国产一区二区精华液| 午夜激情久久久久久久| 欧美久久黑人一区二区| 国产亚洲精品第一综合不卡| 天天影视国产精品| 黄色一级大片看看| 欧美少妇被猛烈插入视频| 久久久久久免费高清国产稀缺| 久久亚洲精品不卡| 国产成人一区二区三区免费视频网站 | 成年动漫av网址| 久久人妻熟女aⅴ| 亚洲国产av影院在线观看| 亚洲精品在线美女| www.av在线官网国产| svipshipincom国产片| 午夜两性在线视频| 免费黄频网站在线观看国产| 精品国产一区二区三区久久久樱花| 亚洲av男天堂| 夜夜骑夜夜射夜夜干| 国产主播在线观看一区二区 | 欧美精品一区二区免费开放| 成人18禁高潮啪啪吃奶动态图| 97人妻天天添夜夜摸| 国产免费现黄频在线看| 日韩一卡2卡3卡4卡2021年| 一本大道久久a久久精品| 日本黄色日本黄色录像| 麻豆国产av国片精品| 国产片特级美女逼逼视频| 日韩,欧美,国产一区二区三区| 精品熟女少妇八av免费久了| 国产亚洲av高清不卡| 天堂中文最新版在线下载| 国产成人a∨麻豆精品| 99国产精品免费福利视频| 中文字幕最新亚洲高清| 亚洲精品久久成人aⅴ小说| 一级毛片 在线播放| 成人国产一区最新在线观看 | 精品少妇久久久久久888优播| 青春草视频在线免费观看| av又黄又爽大尺度在线免费看| 午夜精品国产一区二区电影| 亚洲美女黄色视频免费看| 一边摸一边做爽爽视频免费| 电影成人av| 老司机在亚洲福利影院| 你懂的网址亚洲精品在线观看| 亚洲精品久久午夜乱码| kizo精华| 丰满迷人的少妇在线观看| 国产精品久久久人人做人人爽| 七月丁香在线播放| 丝袜在线中文字幕| 亚洲精品日韩在线中文字幕| 精品福利观看| 人成视频在线观看免费观看| 老司机亚洲免费影院| 欧美xxⅹ黑人| 欧美乱码精品一区二区三区| 90打野战视频偷拍视频| 国产成人精品久久二区二区免费| 日韩,欧美,国产一区二区三区| 搡老乐熟女国产| 精品一品国产午夜福利视频| √禁漫天堂资源中文www| 热99久久久久精品小说推荐| 久久午夜综合久久蜜桃| 国产精品久久久人人做人人爽| 一边亲一边摸免费视频| 精品一区二区三卡| 国产激情久久老熟女| 精品人妻在线不人妻| 亚洲欧洲精品一区二区精品久久久| 久久狼人影院| 国产激情久久老熟女| av视频免费观看在线观看| 一级毛片电影观看| 午夜福利一区二区在线看| 伦理电影免费视频| 1024香蕉在线观看| 欧美精品av麻豆av| 人妻 亚洲 视频| 欧美精品av麻豆av| 亚洲,欧美,日韩| av国产久精品久网站免费入址| 久久久欧美国产精品| 国产成人av激情在线播放| 91精品三级在线观看| 国产免费视频播放在线视频| 国产高清不卡午夜福利| 免费在线观看视频国产中文字幕亚洲 | 亚洲精品在线美女|