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1.
J Vis Exp ; (204)2024 Feb 16.
Article in English | MEDLINE | ID: mdl-38436361

ABSTRACT

Hippocampus-dependent spatial learning in rodents has been tested using a variety of methods. These include the Morris water maze (MWM), Y-maze, and novel object location (NOL) tasks. More recently, the active place avoidance (APA) task has been developed as an alternative to these more traditional approaches. In the APA task, mice must use spatial cues placed around a rotating arena to avoid a stationary shock zone. Due to the multiple parameters that can be adjusted, the APA task has been demonstrated to be a very versatile approach. It lends itself to being used longitudinally and repeatedly for the same cohort of mice. Here, we provide a detailed protocol to successfully conduct the APA task. We also highlight alternative APA approaches that can be used to examine different components of spatial learning. We describe the data collection and analysis processes. Critical steps during the APA task are discussed to increase the likelihood of successfully conducting the test. The APA task has several advantages over more traditional spatial navigation tests. It is appropriate to use with aged mice or those with disease phenotypes such as Alzheimer's disease. The complexity of the task can be easily altered, allowing a wide range of mouse strains to be tested. Further, the APA task is suitable for testing animals that have undergone surgery or experimental interventions that may have affected motor or neural function, such as stroke or traumatic brain injury.


Subject(s)
Alzheimer Disease , Brain Injuries, Traumatic , Humans , Animals , Mice , Spatial Learning , Cues , Data Collection
2.
EMBO J ; 43(4): 533-567, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38316990

ABSTRACT

The phospholipid and free fatty acid (FFA) composition of neuronal membranes plays a crucial role in learning and memory, but the mechanisms through which neuronal activity affects the brain's lipid landscape remain largely unexplored. The levels of saturated FFAs, particularly of myristic acid (C14:0), strongly increase during neuronal stimulation and memory acquisition, suggesting the involvement of phospholipase A1 (PLA1) activity in synaptic plasticity. Here, we show that genetic ablation of the PLA1 isoform DDHD2 in mice dramatically reduces saturated FFA responses to memory acquisition across the brain. Furthermore, DDHD2 loss also decreases memory performance in reward-based learning and spatial memory models prior to the development of neuromuscular deficits that mirror human spastic paraplegia. Via pulldown-mass spectrometry analyses, we find that DDHD2 binds to the key synaptic protein STXBP1. Using STXBP1/2 knockout neurosecretory cells and a haploinsufficient STXBP1+/- mouse model of human early infantile encephalopathy associated with intellectual disability and motor dysfunction, we show that STXBP1 controls targeting of DDHD2 to the plasma membrane and generation of saturated FFAs in the brain. These findings suggest key roles for DDHD2 and STXBP1 in lipid metabolism and in the processes of synaptic plasticity, learning, and memory.


Subject(s)
Fatty Acids, Nonesterified , Memory, Long-Term , Munc18 Proteins , Phospholipases , Animals , Mice , Brain/metabolism , Fatty Acids, Nonesterified/metabolism , Memory/physiology , Munc18 Proteins/genetics , Phospholipases/genetics
3.
Nat Commun ; 14(1): 4375, 2023 08 16.
Article in English | MEDLINE | ID: mdl-37587147

ABSTRACT

The beneficial effects of physical activity on brain ageing are well recognised, with exerkines, factors that are secreted into the circulation in response to exercise, emerging as likely mediators of this response. However, the source and identity of these exerkines remain unclear. Here we provide evidence that an anti-geronic exerkine is secreted by platelets. We show that platelets are activated by exercise and are required for the exercise-induced increase in hippocampal precursor cell proliferation in aged mice. We also demonstrate that increasing the systemic levels of the platelet-derived exerkine CXCL4/platelet factor 4 (PF4) ameliorates age-related regenerative and cognitive impairments in a hippocampal neurogenesis-dependent manner. Together these findings highlight the role of platelets in mediating the rejuvenating effects of exercise during physiological brain ageing.


Subject(s)
Aging , Cognitive Dysfunction , Neurogenesis , Platelet Factor 4 , Animals , Mice , Blood Platelets , Cognition , Hippocampus , Immunologic Factors
4.
J Neurosci ; 43(30): 5448-5457, 2023 07 26.
Article in English | MEDLINE | ID: mdl-37419688

ABSTRACT

Activity-dependent changes in the number of AMPA-type glutamate receptors (AMPARs) at the synapse underpin the expression of LTP and LTD, cellular correlates of learning and memory. Post-translational ubiquitination has emerged as a key regulator of the trafficking and surface expression of AMPARs, with ubiquitination of the GluA1 subunit at Lys-868 controlling the post-endocytic sorting of the receptors into the late endosome for degradation, thereby regulating their stability at synapses. However, the physiological significance of GluA1 ubiquitination remains unknown. In this study, we generated mice with a knock-in mutation in the major GluA1 ubiquitination site (K868R) to investigate the role of GluA1 ubiquitination in synaptic plasticity, learning, and memory. Our results reveal that these male mice have normal basal synaptic transmission but exhibit enhanced LTP and deficits in LTD. They also display deficits in short-term spatial memory and cognitive flexibility. These findings underscore the critical roles of GluA1 ubiquitination in bidirectional synaptic plasticity and cognition in male mice.SIGNIFICANCE STATEMENT Subcellular targeting and membrane trafficking determine the precise number of AMPA-type glutamate receptors at synapses, processes that are essential for synaptic plasticity, learning, and memory. Post-translational ubiquitination of the GluA1 subunit marks AMPARs for degradation, but its functional role in vivo remains unknown. Here we demonstrate that the GluA1 ubiquitin-deficient mice exhibit an altered threshold for synaptic plasticity accompanied by deficits in short-term memory and cognitive flexibility. Our findings suggest that activity-dependent ubiquitination of GluA1 fine-tunes the optimal number of synaptic AMPARs required for bidirectional synaptic plasticity and cognition in male mice. Given that increases in amyloid-ß cause excessive ubiquitination of GluA1, inhibiting that GluA1 ubiquitination may have the potential to ameliorate amyloid-ß-induced synaptic depression in Alzheimer's disease.


Subject(s)
Neuronal Plasticity , Receptors, AMPA , Mice , Male , Animals , Receptors, AMPA/metabolism , alpha-Amino-3-hydroxy-5-methyl-4-isoxazolepropionic Acid/metabolism , Neuronal Plasticity/physiology , Synapses/physiology , Receptors, Glutamate/metabolism , Ubiquitination , Cognition , Hippocampus/metabolism
6.
Front Neurosci ; 17: 1082449, 2023.
Article in English | MEDLINE | ID: mdl-36960169

ABSTRACT

Advanced age is typically associated with a decrease in cognitive function including impairment in the formation and retention of new memories. The hippocampus is critical for learning and memory, especially spatial learning, and is particularly affected by ageing. With advanced age, multiple neural components can be detrimentally affected including a reduction in the number of neural stem and precursor cells, a decrease in the formation of adult born neurons (neurogenesis), and deficits in neural circuitry, all of which ultimately contribute to impaired cognitive function. Importantly, physical exercise has been shown to ameliorate many of these impairments and is able to improve learning and memory. Relevantly, growth hormone (GH) is an important protein hormone that decreases with ageing and increases following physical exercise. Originally described due to its role in longitudinal growth, GH has now been identified to play several additional key roles, especially in relation to the brain. Indeed, the regular decrease in GH levels following puberty is one of the most well documented components of neuroendocrine ageing. Growth hormone deficiency (GHD) has been described to have adverse effects on brain function, which can be ameliorated via GH replacement therapy. Physical exercise has been shown to increase circulating GH levels. Furthermore, we recently demonstrated the increase in exercise-mediated GH is critical for improved cognitive function in the aged mouse. Here we examine the multiple roles that GH plays, particularly in the aged brain and following trauma, irradiation and stroke, and how increasing GH levels can ameliorate deficits in cognition.

7.
Neuron ; 111(8): 1174-1190, 2023 04 19.
Article in English | MEDLINE | ID: mdl-36917978

ABSTRACT

Treating the brain with focused ultrasound (FUS) at low intensities elicits diverse responses in neurons, astroglia, and the extracellular matrix. In combination with intravenously injected microbubbles, FUS also opens the blood-brain barrier (BBB) and facilitates focal drug delivery. However, an incompletely understood cellular specificity and a wide parameter space currently limit the optimal application of FUS in preclinical and human studies. In this perspective, we discuss how different FUS modalities can be utilized to achieve short- and long-term improvements, thereby potentially treating brain disorders. We review the ongoing efforts to determine which parameters induce neuronal inhibition versus activation and how mechanoreceptors and signaling cascades are activated to induce long-term changes, including memory improvements. We suggest that optimal FUS treatments may require different FUS modalities and devices, depending on the targeted brain area or local pathology, and will be greatly enhanced by new techniques for monitoring FUS efficacy.


Subject(s)
Blood-Brain Barrier , Brain , Rats , Animals , Humans , Rats, Sprague-Dawley , Blood-Brain Barrier/diagnostic imaging , Brain/diagnostic imaging , Ultrasonography , Biological Transport , Drug Delivery Systems/methods
8.
STAR Protoc ; 3(3): 101500, 2022 09 16.
Article in English | MEDLINE | ID: mdl-35776637

ABSTRACT

Here, we describe three alternative paradigms to overcome the limitations of the most widely used spatial learning paradigm for rodents: the Morris water maze. We outline the preparation of behavioral testing rooms and mouse handling/habituation prior to testing. We then detail three spatial learning and memory tasks: the Barnes maze, active place avoidance, and novel object location tasks. These tests have been successfully used across multiple ages (from 2 to 24 months) in both wild-type and transgenic animals. For complete details on the use and execution of this protocol, please refer to Leiter et al. (2022).


Subject(s)
Memory , Spatial Learning , Animals , Maze Learning , Mice , Mice, Inbred C57BL
9.
Brain Sci ; 12(6)2022 Jun 13.
Article in English | MEDLINE | ID: mdl-35741660

ABSTRACT

Ultrasound is routinely used for a wide range of diagnostic imaging applications. However, given that ultrasound can operate over a wide range of parameters that can all be modulated, its applicability extends far beyond the bioimaging field. In fact, the modality has emerged as a hybrid technology that effectively assists drug delivery by transiently opening the blood-brain barrier (BBB) when combined with intravenously injected microbubbles, and facilitates neuromodulation. Studies in aged mice contributed to an insight into how low-intensity ultrasound brings about its neuromodulatory effects, including increased synaptic plasticity and improved cognitive functions, with a potential role for neurogenesis and the modulation of NMDA receptor-mediated neuronal signalling. This work is complemented by studies in mouse models of Alzheimer's disease (AD), a form of pathological ageing. Here, ultrasound was mainly employed as a BBB-opening tool that clears protein aggregates via microglial activation and neuronal autophagy, thereby restoring cognition. We discuss the currently available ultrasound approaches and how studies in senescent mice are relevant for AD and can accelerate the application of low-intensity ultrasound in the clinic.

10.
Cell Metab ; 34(3): 408-423.e8, 2022 03 01.
Article in English | MEDLINE | ID: mdl-35120590

ABSTRACT

Although the neurogenesis-enhancing effects of exercise have been extensively studied, the molecular mechanisms underlying this response remain unclear. Here, we propose that this is mediated by the exercise-induced systemic release of the antioxidant selenium transport protein, selenoprotein P (SEPP1). Using knockout mouse models, we confirmed that SEPP1 and its receptor low-density lipoprotein receptor-related protein 8 (LRP8) are required for the exercise-induced increase in adult hippocampal neurogenesis. In vivo selenium infusion increased hippocampal neural precursor cell (NPC) proliferation and adult neurogenesis. Mimicking the effect of exercise through dietary selenium supplementation restored neurogenesis and reversed the cognitive decline associated with aging and hippocampal injury, suggesting potential therapeutic relevance. These results provide a molecular mechanism linking exercise-induced changes in the systemic environment to the activation of quiescent hippocampal NPCs and their subsequent recruitment into the neurogenic trajectory.


Subject(s)
Neural Stem Cells , Selenium , Aging , Animals , Cell Proliferation , Hippocampus , Mice , Neural Stem Cells/metabolism , Neurogenesis/physiology , Selenium/metabolism , Selenium/pharmacology
11.
iScience ; 24(12): 103450, 2021 Dec 17.
Article in English | MEDLINE | ID: mdl-34877505

ABSTRACT

We have shown that the improvement in hippocampal-based learning in aged mice following physical exercise observed is dependent on neurogenesis in the dentate gyrus (DG) and is regulated by changes in growth hormone levels. The changes in neurocircuitry, however, which may underlie this improvement, remain unclear. Using in vivo multimodal magnetic resonance imaging to track changes in aged mice exposed to exercise, we show the improved spatial learning is due to enhanced DG connectivity, particularly the strengthening of the DG-Cornu Ammonis 3 and the DG-medial entorhinal cortex connections in the dorsal hippocampus. Moreover, we provide evidence that these changes in circuitry are dependent on neurogenesis since they were abrogated by ablation of newborn neurons following exercise. These findings identify the specific changes in hippocampal circuitry that underlie the cognitive improvements resulting from physical activity and show that they are dependent on the activation of neurogenesis in aged animals.

12.
iScience ; 24(11): 103275, 2021 Nov 19.
Article in English | MEDLINE | ID: mdl-34761193

ABSTRACT

Hippocampal function is critical for spatial and contextual learning, and its decline with age contributes to cognitive impairment. Exercise can improve hippocampal function, however, the amount of exercise and mechanisms mediating improvement remain largely unknown. Here, we show exercise reverses learning deficits in aged (24 months) female mice but only when it occurs for a specific duration, with longer or shorter periods proving ineffective. A spike in the levels of growth hormone (GH) and a corresponding increase in neurogenesis during this sweet spot mediate this effect because blocking GH receptor with a competitive antagonist or depleting newborn neurons abrogates the exercise-induced cognitive improvement. Moreover, raising GH levels with GH-releasing hormone agonist improved cognition in nonrunners. We show that GH stimulates neural precursors directly, indicating the link between raised GH and neurogenesis is the basis for the substantially improved learning in aged animals.

13.
Mol Psychiatry ; 26(11): 6975-6991, 2021 11.
Article in English | MEDLINE | ID: mdl-34040151

ABSTRACT

Advanced physiological aging is associated with impaired cognitive performance and the inability to induce long-term potentiation (LTP), an electrophysiological correlate of memory. Here, we demonstrate in the physiologically aged, senescent mouse brain that scanning ultrasound combined with microbubbles (SUS+MB), by transiently opening the blood-brain barrier, fully restores LTP induction in the dentate gyrus of the hippocampus. Intriguingly, SUS treatment without microbubbles (SUSonly), i.e., without the uptake of blood-borne factors, proved even more effective, not only restoring LTP, but also ameliorating the spatial learning deficits of the aged mice. This functional improvement is accompanied by an altered milieu of the aged hippocampus, including a lower density of perineuronal nets, increased neurogenesis, and synaptic signaling, which collectively results in improved spatial learning. We therefore conclude that therapeutic ultrasound is a non-invasive, pleiotropic modality that may enhance cognition in elderly humans.


Subject(s)
Long-Term Potentiation , Receptors, N-Methyl-D-Aspartate , Animals , Cognition/physiology , Hippocampus/metabolism , Long-Term Potentiation/physiology , Mice , Neurogenesis , Receptors, N-Methyl-D-Aspartate/metabolism
14.
J Neurosci ; 41(19): 4172-4186, 2021 05 12.
Article in English | MEDLINE | ID: mdl-33785644

ABSTRACT

Microglia, the resident immune cells of the CNS, have emerged as key regulators of neural precursor cell activity in the adult brain. However, the microglia-derived factors that mediate these effects remain largely unknown. In the present study, we investigated a role for microglial brain-derived neurotrophic factor (BDNF), a neurotrophic factor with well known effects on neuronal survival and plasticity. Surprisingly, we found that selective genetic ablation of BDNF from microglia increased the production of newborn neurons under both physiological and inflammatory conditions (e.g., LPS-induced infection and traumatic brain injury). Genetic ablation of BDNF from microglia otherwise also interfered with self-renewal/proliferation, reducing their overall density. In conclusion, we identify microglial BDNF as an important factor regulating microglia population dynamics and states, which in turn influences neurogenesis under both homeostatic and pathologic conditions.SIGNIFICANCE STATEMENT (1) Microglial BDNF contributes to self-renewal and density of microglia in the brain. (2) Selective ablation of BDNF in microglia stimulates neural precursor proliferation. (3) Loss of microglial BDNF augments working memory following traumatic brain injury. (4) Benefits of repopulating microglia on brain injury are not mediated via microglial BDNF.


Subject(s)
Brain-Derived Neurotrophic Factor/genetics , Hippocampus/physiology , Microglia/metabolism , Nerve Regeneration/genetics , Nerve Regeneration/physiology , Neurogenesis/genetics , Neurogenesis/physiology , Animals , Cell Proliferation , Cell Survival/genetics , Dendrites/ultrastructure , Dendritic Spines/ultrastructure , Encephalitis/chemically induced , Encephalitis/pathology , Learning/physiology , Memory/physiology , Mice , Mice, Inbred C57BL , Mice, Knockout , Neural Stem Cells/physiology , Neural Stem Cells/ultrastructure
15.
Sci Rep ; 10(1): 19269, 2020 11 06.
Article in English | MEDLINE | ID: mdl-33159114

ABSTRACT

Hippocampal atrophy and cognitive decline are common sequelae of many neurodegenerative disorders, including stroke. To determine whether cognitive decline can be ameliorated by exercise-induced neurogenesis, C57BL/6 mice in which a unilateral hippocampal injury had been induced by injecting the vasoconstrictor endothelin-1 into their right hippocampus, were run voluntarily for 21 days on a running-wheel. We found the severe deficits in spatial learning, as detected by active place-avoidance task, following injury were almost completely restored in animals that ran whereas those that did not run showed no improvement. We show the increase in neurogenesis found in both the injured and contralateral hippocampi following running was responsible for the restoration of learning since bilateral ablation of newborn doublecortin (DCX)-positive neurons abrogated the cognitive improvement, whereas unilateral ablations of DCX-positive neurons did not prevent recovery, demonstrating that elevated neurogenesis in either the damaged or intact hippocampus is sufficient to reverse hippocampal injury-induced deficits.


Subject(s)
Hippocampus , Learning Disabilities , Neurogenesis , Physical Conditioning, Animal , Animals , Doublecortin Protein , Hippocampus/injuries , Hippocampus/physiopathology , Learning Disabilities/physiopathology , Learning Disabilities/therapy , Mice , Mice, Transgenic
16.
Theranostics ; 8(22): 6233-6247, 2018.
Article in English | MEDLINE | ID: mdl-30613294

ABSTRACT

The blood-brain barrier presents a major challenge for the delivery of therapeutic agents to the brain; however, it can be transiently opened by combining low intensity ultrasound with microbubble infusion. Studies evaluating this technology have largely been performed in rodents, including models of neurological conditions. However, despite promising outcomes in terms of drug delivery and the amelioration of neurological impairments, the potential for long-term adverse effects presents a major concern in the context of clinical applications. Methods: To fill this gap, we repeatedly treated 12-month-old wild-type mice with ultrasound, followed by a multimodal analysis for up to 18 months of age. Results: We found that spatial memory in these aged mice was not adversely affected as assessed in the active place avoidance test. Sholl analysis of Golgi impregnations in the dentate gyrus of the hippocampus did not reveal any changes to the neuronal cytoarchitecture. Long-term potentiation, a cellular correlate of memory, was still achievable, magnetic resonance spectroscopy revealed no major changes in metabolites, and diffusion tensor imaging revealed normal microstructure and tissue integrity in the hippocampus. More specifically, all measures of diffusion appeared to support a neuroprotective effect of ultrasound treatment on the brain. Conclusion: This multimodal analysis indicates that therapeutic ultrasound for blood-brain barrier opening is safe and potentially protective in the long-term, underscoring its validity as a potential treatment modality for diseases of the brain.


Subject(s)
Aging/radiation effects , Brain/radiation effects , Aging/physiology , Animals , Brain/diagnostic imaging , Brain/physiology , Female , Hippocampus/diagnostic imaging , Hippocampus/physiology , Hippocampus/radiation effects , Mice , Mice, Inbred C57BL , Multimodal Imaging/adverse effects , Spatial Memory/radiation effects , Time Factors , Ultrasonic Therapy/adverse effects , Ultrasonography
17.
Stem Cells ; 33(2): 503-14, 2015 Feb.
Article in English | MEDLINE | ID: mdl-25308084

ABSTRACT

A comprehensive understanding of adult neurogenesis is essential for the development of effective strategies to enhance endogenous neurogenesis in the damaged brain. Olfactory interneurons arise throughout life from stem cells residing in the subventricular zone of the lateral ventricle. Neural precursors then migrate along the rostral migratory stream (RMS) to the olfactory bulb. To ensure a continuous supply of adult-born interneurons, precursor proliferation, migration, and differentiation must be tightly coordinated. Here, we show that the netrin/repulsive guidance molecule receptor, Neogenin, is a key regulator of adult neurogenesis. Neogenin loss-of-function (Neo(gt/gt)) mice exhibit a specific reduction in adult-born calretinin interneurons in the olfactory granule cell layer. In the absence of Neogenin, neuroblasts fail to migrate into the olfactory bulb and instead accumulate in the RMS. In vitro migration assays confirmed that Neogenin is required for Netrin-1-mediated neuroblast migration and chemoattraction. Unexpectedly, we also identified a novel role for Neogenin as a regulator of the neuroblast cell cycle. We observed that those neuroblasts able to reach the Neo(gt/gt) olfactory bulb failed to undergo terminal differentiation. Cell cycle analysis revealed an increase in the number of S-phase neuroblasts within the Neo(gt/gt) RMS and a significant reduction in the number of neuroblasts exiting the cell cycle, providing an explanation for the loss of mature calretinin interneurons in the granule cell layer. Therefore, Neogenin acts to synchronize neuroblast migration and terminal differentiation through the regulation of neuroblast cell cycle kinetics within the neurogenic microenvironment of the RMS.


Subject(s)
Cell Differentiation , Cell Movement , Membrane Proteins/metabolism , Neurogenesis , Olfactory Bulb/metabolism , Receptors, Cell Surface/metabolism , S Phase , Animals , Calbindin 2/metabolism , Cellular Microenvironment , Membrane Proteins/genetics , Mice , Mice, Transgenic , Netrin Receptors , Olfactory Bulb/cytology , Receptors, Cell Surface/genetics
18.
Methods Mol Biol ; 1059: 183-94, 2013.
Article in English | MEDLINE | ID: mdl-23934844

ABSTRACT

Since its inception in 1992 [Reynolds and Weiss, Science 255:1707-10, 1992], the neurosphere assay (NSA) has proven an exceptionally useful tool in detecting neural stem cells (NSCs) in both the developing and adult mammalian brain. To date, over 1,300 manuscripts have been published employing the assay, attesting to the robustness of the assay, and its ease of use. However, a brief survey of the literature demonstrates that the number of primary neurospheres generated from essentially the same anatomical region (i.e., the periventricular region of the rostral lateral ventricle) ranges between 150 and 936 [Gritti et al., J Neurosci 22:437-445, 2002; Tropepe et al., J Neurosci 17:7850-59, 1997; Doetsch et al., Cell 97:703-16, 1999; Enwere et al., J Neurosci 24:8354-65, 2004]. Indeed, in our hands we typically generate approximately 1,800 primary spheres when harvesting tissue from the same region.


Subject(s)
Brain/cytology , Neural Stem Cells/physiology , Animals , Cell Culture Techniques , Dissection , Mice , Mice, Inbred C57BL , Microtomy , Organ Specificity , Spheroids, Cellular
19.
PLoS One ; 7(11): e49912, 2012.
Article in English | MEDLINE | ID: mdl-23209615

ABSTRACT

Here we demonstrate, both in vivo and in vitro, that growth hormone (GH) mediates precursor cell activation in the subventricular zone (SVZ) of the aged (12-month-old) brain following exercise, and that GH signaling stimulates precursor activation to a similar extent to exercise. Our results reveal that both addition of GH in culture and direct intracerebroventricular infusion of GH stimulate neural precursor cells in the aged brain. In contrast, no increase in neurosphere numbers was observed in GH receptor null animals following exercise. Continuous infusion of a GH antagonist into the lateral ventricle of wild-type animals completely abolished the exercise-induced increase in neural precursor cell number. Given that the aged brain does not recover well after injury, we investigated the direct effect of exercise and GH on neural precursor cell activation following irradiation. This revealed that physical exercise as well as infusion of GH promoted repopulation of neural precursor cells in irradiated aged animals. Conversely, infusion of a GH antagonist during exercise prevented recovery of precursor cells in the SVZ following irradiation.


Subject(s)
Dentate Gyrus/metabolism , Growth Hormone/metabolism , Lateral Ventricles/metabolism , Neural Stem Cells/metabolism , Physical Conditioning, Animal , Age Factors , Animals , Dentate Gyrus/drug effects , Dentate Gyrus/radiation effects , Female , Growth Hormone/administration & dosage , Growth Hormone/pharmacology , Lateral Ventricles/drug effects , Lateral Ventricles/radiation effects , Mice , Mice, Knockout , Neural Stem Cells/drug effects , Receptors, Somatotropin/genetics , Receptors, Somatotropin/metabolism
20.
PLoS One ; 7(9): e44371, 2012.
Article in English | MEDLINE | ID: mdl-22973440

ABSTRACT

In the search for ways to combat degenerative neurological disorders, neurogenesis-stimulating factors are proving to be a promising area of research. In this study, we show that the hormonal factor prolactin (PRL) can activate a pool of latent precursor cells in the adult mouse hippocampus. Using an in vitro neurosphere assay, we found that the addition of exogenous PRL to primary adult hippocampal cells resulted in an approximate 50% increase in neurosphere number. In addition, direct infusion of PRL into the adult dentate gyrus also resulted in a significant increase in neurosphere number. Together these data indicate that exogenous PRL can increase hippocampal precursor numbers both in vitro and in vivo. Conversely, PRL null mice showed a significant reduction (approximately 80%) in the number of hippocampal-derived neurospheres. Interestingly, no deficit in precursor proliferation was observed in vivo, indicating that in this situation other niche factors can compensate for a loss in PRL. The PRL loss resulted in learning and memory deficits in the PRL null mice, as indicated by significant deficits in the standard behavioral tests requiring input from the hippocampus. This behavioral deficit was rescued by direct infusion of recombinant PRL into the hippocampus, indicating that a lack of PRL in the adult mouse hippocampus can be correlated with impaired learning and memory.


Subject(s)
Hippocampus/cytology , Neural Stem Cells/drug effects , Neurogenesis/drug effects , Prolactin/pharmacology , Analysis of Variance , Animals , Blotting, Western , Bromodeoxyuridine , Cell Count , Cell Differentiation/physiology , Dentate Gyrus/drug effects , Dentate Gyrus/physiology , Immunohistochemistry , In Vitro Techniques , Learning/drug effects , Memory/drug effects , Mice , Mice, Inbred C57BL , Microarray Analysis , Neural Stem Cells/physiology , Neuropsychological Tests , Octoxynol
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