| Literature DB >> 31191637 |
Leeanne Carey1,2, Alistair Walsh1,2, Achini Adikari3, Peter Goodin2,4, Damminda Alahakoon3, Daswin De Silva3, Kok-Leong Ong3, Michael Nilsson1,5,6, Lara Boyd7.
Abstract
Aim: Neural plastic changes are experience and learning dependent, yet exploiting this knowledge to enhance clinical outcomes after stroke is in its infancy. Our aim was to search the available evidence for the core concepts of neuroplasticity, stroke recovery, and learning; identify links between these concepts; and identify and review the themes that best characterise the intersection of these three concepts.Entities:
Mesh:
Year: 2019 PMID: 31191637 PMCID: PMC6525913 DOI: 10.1155/2019/5232374
Source DB: PubMed Journal: Neural Plast ISSN: 1687-5443 Impact factor: 3.599
Figure 1Concept map depicting the three main concepts and the potential associations between them.
Domain knowledge from experts used for each of the three concept areas.
| Concept 1: Neural Plasticity | Concept 2: Stroke Recovery | Concept 3: Learning | Concept 3: Learning |
|---|---|---|---|
| Cells | Post-stroke | Experience-dependent | Activity-dependent |
| Synapses | Time | Experience | Adaptation |
| BDNF | Trajectory | Spontaneous | Transfer |
| Brain | Function | Implicit | Complex, complexity |
| Brain regions | Skill | Enriched environment | Metacognition |
| Neuroimaging | Impairment | Multisensory | Strategy |
| Learning systems | Movement | Multimodal | Problem solve |
| White matter | Sensation | Cross-modal | Generalise |
| Functional connectivity | Language | Long-term | Novel |
| Brain activation | Speech | Potentiation | Relearning |
| Reorganisation | Physical | Environment | Consolidation |
| Frontal | Cognition | Stimulation | Well learnt |
| Networks/systems | Mood | Performance | Overlearn |
| Brain network | Activity | Learning-dependent | Personal experience |
| Connection | Task | Skill learning | Environment |
| Behavior change | Work | Motor learning | Task complexity |
| Consolidation | Participation | Perceptual learning | Task switching |
| Experience-dependent plasticity | Sensory learning | Performance | |
| Learning-dependent plasticity | Discrimination | Human | |
| Activity-dependent plasticity | Generalisation | Individual | |
| Glial cells | Reinforcement learning | Motivation | |
| Microglia | Task-specific | Cognition/cognitive | |
| Astrocytes | Sequence | Concentration | |
| Gliosis | Errorful | Transmitters | |
| Neuroimmunology | Errorless | Receptors | |
| Blood brain barrier | Challenge point | Vision | |
| Axons | Hearing | ||
| Dendrites | Perception | ||
| Circulation | Emotion | ||
| Neurogenesis | Mood | ||
| Progenitor cells | Fatigue | ||
| Stress |
Figure 2The high-level process of the methodology.
Figure 3Generated concept map using the automatic text processing engine—showing 3 main concepts (nodes), strength of link between nodes (number of publications), identification of common themes being discussed based on the proposed concept link map (encircled areas 1, 2, and 3), and topics (words) that help to characterise the concept and/or the links between them.
Common themes identified linking concepts of neuroplasticity, stroke recovery, and learning.
| Topic | Normalized score | Publication count |
|---|---|---|
| Common themes between neuroplasticity and learning (Link 1) | ||
| Synaptic plasticity | 0.314 | 778 |
| Consolidation | 0.231 | 360 |
| Long-term potentiation | 0.145 | 340 |
| Perceptual learning | 0.145 | 280 |
| Experience-dependent learning | 0.059 | 150 |
| Generalization | 0.038 | 99 |
| Experience-dependent plasticity | 0.025 | 67 |
| Short-term plasticity | 0.022 | 58 |
| Reinforcement learning | 0.021 | 55 |
| Common themes between neuroplasticity and stroke recovery (Link 2) | ||
| Cortical activation | 0.562 | 113 |
| Rehabilitation | 0.438 | 86 |
| Common themes between neuroplasticity, stroke recovery, and learning (Link 3) | ||
| Cognition | 0.279 | 4032 |
| Brain | 0.141 | 3762 |
| Stimulation | 0.113 | 2830 |
| Task-based learning | 0.085 | 2136 |
| Activity-based learning | 0.073 | 1834 |
| Motor learning | 0.043 | 1090 |
| Learning modifiers | 0.041 | 1018 |
| Skills | 0.036 | 910 |
| Movement | 0.030 | 760 |
| Impairment | 0.029 | 732 |
| Language | 0.024 | 613 |
| Connectivity | 0.019 | 472 |
| Speech | 0.017 | 429 |
| Neuroimaging | 0.014 | 344 |
| Neurorehabilitation | 0.009 | 242 |
| Motor control | 0.008 | 203 |
| BDNF | 0.008 | 192 |
| Skill learning | 0.007 | 188 |
| Functional connectivity | 0.006 | 164 |
| Brain injury | 0.006 | 162 |
| Brain activation | 0.006 | 160 |
| Sequence learning | 0.004 | 107 |
| Relearning | 0.003 | 105 |
Top 30 filtered articles that address common themes being discussed in learning and stroke recovery with common themes in neuroplasticity.
| Author | Date | Title | Journal | Type |
|---|---|---|---|---|
| Charalambous et al. [ | 2018 | The Feasibility of an Acute High-Intensity Exercise Bout to Promote Locomotor Learning after Stroke |
| Controlled trial |
| Fan et al. [ | 2017 | Transcranial Direct Current Stimulation over Multiple Days Enhances Motor Performance of a Grip Task |
| Controlled trial |
| van der Vliet et al. [ | 2017 | BDNF Val66Met but Not Transcranial Direct Current Stimulation Affects Motor Learning after Stroke |
| Controlled trial |
| Pearson-Fuhrhop et al. [ | 2017 | Genetic Variation in the Human Brain Dopamine System Influences Motor Learning and Its Modulation by L-Dopa |
| Controlled trial |
| Horton et al. [ | 2017 | Adaptation, Perceptual Learning, and Plasticity of Brain Functions |
| Review |
| Divya et al. [ | 2017 | Post-Stroke Cognitive Impairment - A Cross-Sectional Comparison Study between Mild Cognitive Impairment of Vascular and Non-Vascular Etiology |
| Comparative study |
| Wadden et al. [ | 2017 | Predicting Motor Sequence Learning in Individuals with Chronic Stroke |
| Controlled trial |
| Censor et al. [ | 2016 | Altered Human Memory Modification in the Presence of Normal Consolidation |
| Controlled trial |
| Siegel et al. [ | 2016 | Disruptions of Network Connectivity Predict Impairment in Multiple Behavioral Domains after Stroke |
| Clinical trial |
| Buma et al. [ | 2016 | Brain Activation Is Related to Smoothness of Upper Limb Movements after Stroke |
| Clinical trial |
| Reinkensmeyer et al. [ | 2016 | Computational Neurorehabilitation: Modeling Plasticity and Learning to Predict Recovery |
| Review |
| Soekadar et al. [ | 2015 | Brain-Machine Interfaces in Neurorehabilitation of Stroke |
| Review |
| Kitago et al. [ | 2015 | Robotic Therapy for Chronic Stroke: General Recovery of Impairment or Improved Task-Specific Skill? |
| Clinical trial |
| Lefebvre et al. [ | 2015 | Neural Substrates Underlying Stimulation-Enhanced Motor Skill Learning after Stroke |
| Controlled trial |
| Winstein et al. [ | 2014 | Infusing Motor Learning Research into Neurorehabilitation Practice: A Historical Perspective with Case Exemplar from the Accelerated Skill Acquisition Program |
| Case study |
| Mang et al. [ | 2013 | Promoting Neuroplasticity for Motor Rehabilitation after Stroke: Considering the Effects of Aerobic Exercise and Genetic Variation on Brain-Derived Neurotrophic Factor |
| Review |
| Buma et al. [ | 2013 | Understanding Upper Limb Recovery after Stroke |
| Review |
| Byl et al. [ | 2013 | Effectiveness of Sensory and Motor Rehabilitation of the Upper Limb following the principles of Neuroplasticity: Patients Stable Poststroke |
| Controlled trial |
| Bowden et al. [ | 2013 | Promoting Neuroplasticity and Recovery after Stroke: Future Directions for Rehabilitation Clinical Trials |
| Review |
| Albert and Kesselring [ | 2012 | Neurorehabilitation of Stroke |
| Review |
| Arya et al. [ | 2011 | Movement Therapy Induced Neural Reorganization and Motor Recovery in Stroke: A Review. |
| Review |
| Duret [ | 2010 | [Contributions of Robotic Devices to Upper Limb Poststroke Rehabilitation] |
| Review |
| Graham et al. [ | 2009 | The Bobath Concept in Contemporary Clinical Practice |
| Review |
| Ween [ | 2008 | Functional Imaging of Stroke Recovery: An Ecological Review from a Neural Network Perspective with an Emphasis on Motor Systems |
| Review |
| Ziemann and Siebner [ | 2008 | Modifying Motor Learning through Gating and Homeostatic Metaplasticity |
| Review |
| Daly and Ruff [ | 2007 | Construction of Efficacious Gait and Upper Limb Functional Interventions Based on Brain Plasticity Evidence and Model-Based Measures for Stroke Patients |
| Discussion paper |
| Hlustík and Mayer [ | 2006 | Paretic Hand in Stroke: From Motor Cortical Plasticity Research to Rehabilitation |
| Review |
| Krakauer [ | 2006 | Motor Learning: Its Relevance to Stroke Recovery and Neurorehabilitation |
| Review |
| Forrester et al. [ | 2005 | Exercise-Mediated Locomotor Recovery and Lower-Limb Neuroplasticity after Stroke |
| Review |
| Winstein et al. [ | 1999 | Motor Learning after Unilateral Brain Damage |
| Controlled trial |
Figure 4Generated comparison to demonstrate the evolution of topics over three selected time periods. The weight of the links is a representation of the quantity of publications.