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View our products for home use. Coming in the summer of 2025! First come, first serve (-:

glove.rehab

Be the first to have an L-shaped glove that allows you to do yoga & crawl without your fingers curling up while feeling the underground! 

  • hand made in Sweden
  • science backed* and invented by a stroke survivor
  • top quality!
  • 5-year warranty**
pre-order now!

Crawling machine

Be the first to have this unique machine at home

  • made in the Netherlands
  • science backed* and invented by a stroke survivor
  • top quality!
  • 10-year warranty**
pre-order now!

Armswing walker

Be the first to have this unique arm swing static machine at home

  • made in the Netherlands
  • science backed* and invented by a stroke survivor
  • top quality!
  • 10-year warranty**
pre-order now!

Powercrawling

Be the first to have this unique machine at home

  • made in the Netherlands
  • science backed* and invented by a stroke survivor
  • top quality!
  • 10-year warranty**
pre-order now!

Armswing roller

Be the first to have this unique arm swing mobile roller to take out for a walk 

  • made in the Netherlands
  • science backed* and invented by a stroke survivor
  • top quality!
  • 10-year warranty**
pre-order now!

*References

Crawling

Bajaj, S., Butler, A., Drake, D., & Dhamala, M. (2015). Functional organization and restoration of the brain motor-execution network after stroke and rehabilitation. Frontiers in Human Neuroscience, 9. https://doi.org/10.3389/fnhum.2015.00173

 

Calautti, C., Jones, P., Naccarato, M., Sharma, N., Day, D., Bullmore, E., … & Baron, J. (2010). The relationship between motor deficit and primary motor cortex hemispheric activation balance after stroke: longitudinal fmri study. Journal of Neurology Neurosurgery & Psychiatry, 81(7), 788-792. https://doi.org/10.1136/jnnp.2009.190512

 

Hébert, D., Lindsay, M., McIntyre, A., Kirton, A., Rumney, P., Bagg, S., … & Teasell, R. (2016). Canadian stroke best practice recommendations: stroke rehabilitation practice guidelines, update 2015. International Journal of Stroke, 11(4), 459-484. https://doi.org/10.1177/1747493016643553

 

Law, K., Singh, D., & Ripin, Z. (2018). Development of a lower limb stroke rehabilitation machine. Matec Web of Conferences, 217, 02004. https://doi.org/10.1051/matecconf/201821702004

 

Puhl, J., Bigelow, A., Rue, M., & Mesce, K. (2018). Functional recovery of a locomotor network after injury: plasticity beyond the central nervous system. Eneuro, 5(4), ENEURO.0195-18.2018. https://doi.org/10.1523/eneuro.0195-18.2018

 

Wu, C., Lin, S., Hsu, L., Yeh, S., Guu, S., Lee, S., … & Chen, C. (2020). Synchrony between default-mode and sensorimotor networks facilitates motor function in stroke rehabilitation: a pilot fmri study. Frontiers in Neuroscience, 14. https://doi.org/10.3389/fnins.2020.00548

Armswing

Arya, K. N., Pandian, S., Sharma, A., Kumar, V., & Kashyap, V. K. (2019). Interlimb coupling in poststroke rehabilitation: a pilot randomized controlled trial. Topics in Stroke Rehabilitation, 27(4), 272–289. https://doi.org/10.1080/10749357.2019.1682368PubMed

Caracciolo, L., Marosi, M., Mazzitelli, J., Latifi, S., Sano, Y., Galvan, L., … & Carmichael, S. (2018). CREB controls cortical circuit plasticity and functional recovery after stroke. Nature Communications, 9(1). https://doi.org/10.1038/s41467-018-04445-9

Chang, W., Shin, Y., Lee, S., Oh, G., Lim, Y., & Kim, Y. (2015). Characteristics of inpatient care and rehabilitation for acute first-ever stroke patients. Yonsei Medical Journal, 56(1), 262. https://doi.org/10.3349/ymj.2015.56.1.262

Engel‐Yeger, B., Tse, T., Josman, N., Baum, C., & Carey, L. (2018). Scoping review: The trajectory of recovery of participation outcomes following stroke. Behavioural Neurology, 2018, 1–22. https://doi.org/10.1155/2018/5472018

French, M., Moore, M., Pohlig, R., & Reisman, D. (2015). Self-efficacy mediates the relationship between balance/walking performance, activity, and participation after stroke. Topics in Stroke Rehabilitation, 23(2), 77–83. https://doi.org/10.1080/10749357.2015.1110306

Glenis, G., Setiawan, R., & Tambunan, T. (2021). The effectiveness of telerehabilitation for post stroke patients. Cermin Dunia Kedokteran, 48(11), 329–333. https://doi.org/10.55175/cdk.v48i11.143

Harjpal, P., Qureshi, M., & Kovela, R. (2021). Efficacy of bilateral lower limb training over unilateral to re-educate balance and walking in post stroke survivors: A protocol for randomized clinical trial. https://doi.org/10.21203/rs.3.pex-1497/v1

Hesamzadeh, A., Dalvandi, A., Maddah, S., Fallahi‐Khoshknab, M., & Ahmadi, F. (2016). Family caregivers’ experiences of stroke recovery among older adults living in Iran: A qualitative study. Iranian Red Crescent Medical Journal, 20(S1). https://doi.org/10.5812/ircmj.27686

Jang, S. (2009). The role of the corticospinal tract in motor recovery in patients with a stroke: A review. Neurorehabilitation, 24(3), 285–290. https://doi.org/10.3233/nre-2009-0480

Kennedy, N. (2021). The role of neuroplasticity in stroke nursing. British Journal of Neuroscience Nursing, 17(Sup2), S20–S25. https://doi.org/10.12968/bjnn.2021.17.sup2.s20

Kim, W., Bae, H., Lee, H., & Shin, H. (2018). Status of rehabilitation after ischemic stroke: A Korean nationwide study. Annals of Rehabilitation Medicine, 42(4), 528–535. https://doi.org/10.5535/arm.2018.42.4.528

Klarner, T., Barss, T. S., Sun, Y., Kaupp, C., Loadman, P. M., & Zehr, E. P. (2016). Explaining origins of rhythmic arm movement during locomotion: approaches using electromyography and transcranial magnetic stimulation. Journal of Neurophysiology, 116(5), 2251–2259. https://doi.org/10.1152/jn.00570.2017

Kong, K., & Lee, J. (2014). Temporal recovery of activities of daily living in the first year after ischemic stroke: A prospective study of patients admitted to a rehabilitation unit. Neurorehabilitation, 35(2), 221–226. https://doi.org/10.3233/nre-141110

Koshy, M., Vaghela, K., & Scholar, P. (2023). Efficacy of psychotherapeutic nursing intervention package on depression, anxiety and emotional resilience among stroke survivors. https://doi.org/10.52783/jrtdd.v6i1.1779

Lin, S., Xie, S., Zhou, J., Tu, Q., Wang, C., & Chen, L. (2022). Stroke survivors', caregivers', and nurse coaches' perspectives on health coaching program towards hospital‐to‐home transition care: A qualitative descriptive process evaluation. Journal of Clinical Nursing, 32(17–18), 6533–6544. https://doi.org/10.1111/jocn.16590

Norouzi-Gheidari, N., Archambault, P., Monte‐Silva, K., Kairy, D., Sveistrup, H., Trivino, M., … & Milot, M. (2021). Feasibility and preliminary efficacy of a combined virtual reality, robotics and electrical stimulation intervention in upper extremity stroke rehabilitation. Journal of Neuroengineering and Rehabilitation, 18(1). https://doi.org/10.1186/s12984-021-00851-1

Pennati, G., Plantin, J., Carment, L., Roca, P., Baron, J., Pavlova, E., … & Lindberg, P. (2020). Recovery and prediction of dynamic precision grip force control after stroke. Stroke, 51(3), 944–951. https://doi.org/10.1161/strokeaha.119.026205

Picelli, A., Filippetti, M., Piccolo, L., Schena, F., Chelazzi, L., Libera, C., … & Smania, N. (2021). Rehabilitation and biomarkers of stroke recovery: Study protocol for a randomized controlled trial. Frontiers in Neurology, 11. https://doi.org/10.3389/fneur.2020.618200

Sidek, N., Kamalakannan, S., Ismail, T., Musa, K., Ibrahim, K., Aziz, Z., … & Nadal, I. (2022). Experiences and needs of the caregivers of stroke survivors in Malaysia—A phenomenological exploration. Frontiers in Neurology, 13. https://doi.org/10.3389/fneur.2022.996620

Stinear, C. (2016). Stroke rehabilitation research needs to be different to make a difference. F1000Research, 5, 1467. https://doi.org/10.12688/f1000research.8722.1

Stinear, C., & Byblow, W. (2014). Predicting and accelerating motor recovery after stroke. Current Opinion in Neurology, 27(6), 624–630. https://doi.org/10.1097/wco.0000000000000153

Tistad, M., Koch, L., Sjöstrand, C., Tham, K., & Ytterberg, C. (2013). What aspects of rehabilitation provision contribute to self‐reported met needs for rehabilitation one year after stroke – amount, place, operator or timing? Health Expectations, 16(3). https://doi.org/10.1111/hex.12095

Wahl, A., Omlor, W., Rubio, J., Chen, J., Zheng, H., Schröter, A., … & Schwab, M. (2014). Asynchronous therapy restores motor control by rewiring of the rat corticospinal tract after stroke. Science, 344(6189), 1250–1255. https://doi.org/10.1126/science.1253050

Ye, Y., Jian, Z., Jin, T., Li, Y., Zeng, Z., Xu, Z., … & Gu, L. (2022). Nox2-mediated reactive oxygen species are double-edged swords in focal cerebral ischemia in mice. Journal of Neuroinflammation, 19(1). https://doi.org/10.1186/s12974-022-02551-6

Hand 

Ballardini, G., Carlini, G., Giannoni, P., Scheidt, R., Nisky, I., & Casadio, M. (2018). Tactile-star: A novel tactile stimulator and recorder system for evaluating and improving tactile perception. Frontiers in Neurorobotics, 12, 12. https://doi.org/10.3389/fnbot.2018.00012

Borstad, A., Nichols‐Larsen, D., Uswatte, G., Strahl, N., Simeo, M., Proffitt, R., … Gauthier, L. (2022). Tactile sensation improves following motor rehabilitation for chronic stroke: The VIGOROUS randomized controlled trial. Neurorehabilitation and Neural Repair, 36(8), 525–534. https://doi.org/10.1177/15459683221107893

Droit‐Volet, S., Monceau, S., Dambrun, M., & Martinelli, N. (2020). Embodied time and the out-of-body experience of the self. PeerJ, 8, e8565. https://doi.org/10.7717/peerj.8565

Hirayama, K., Takahashi, T., Koga, T., & Osu, R. (2023). Somatosensory stimulation on the wrist enhances the subsequent hand-choice by biasing toward the stimulated hand. Research Square. https://doi.org/10.21203/rs.3.rs-3587580/v1

Kilgard, M., Rennaker, R., Alexander, J., & Dawson, J. (2018). Vagus nerve stimulation paired with tactile training improved sensory function in a chronic stroke patient. Neurorehabilitation, 42(2), 159–165. https://doi.org/10.3233/nre-172273

Lamp, G., Goodin, P., Palmer, S., Low, E., Barutchu, A., & Carey, L. (2019). Activation of bilateral secondary somatosensory cortex with right hand touch stimulation: A meta-analysis of functional neuroimaging studies. Frontiers in Neurology, 9, 1129. https://doi.org/10.3389/fneur.2018.01129

Ricci, R., Salatino, A., Caldano, M., Perozzo, P., Cerrato, P., Pyasik, M., … Berti, A. (2019). Phantom touch: How to unmask sensory unawareness after stroke. Cortex, 121, 253–263. https://doi.org/10.1016/j.cortex.2019.08.021

Turville, M., Cahill, L., Matyas, T., Blennerhassett, J., & Carey, L. (2019). The effectiveness of somatosensory retraining for improving sensory function in the arm following stroke: A systematic review. Clinical Rehabilitation, 33(5), 834–846. https://doi.org/10.1177/0269215519829795

Umeki, N., Murata, J., & Higashijima, M. (2019). Effects of training for finger perception on functional recovery of hemiplegic upper limbs in acute stroke patients. Occupational Therapy International, 2019, 6508261. https://doi.org/10.1155/2019/6508261