1.
Krebs JE, Goldstein ES, Kilpatrick ST, Lewin B. Lewin’s genes X [Internet]. International ed. Sudbury, Mass: Jones and Bartlett; 2011. Available from: https://app.kortext.com/Shibboleth.sso/Login?entityID=https://shib-idp.ucl.ac.uk/shibboleth&target=https://app.kortext.com/borrow/323975
2.
Wood NW. Neurogenetics: a guide for clinicians [Internet]. Cambridge: Cambridge University Press; 2012. Available from: http://ucl.alma.exlibrisgroup.com/view/action/uresolver.do?operation=resolveService&package_service_id=2910094060004761&institutionId=4761&customerId=4760
3.
Pritchard DJ, Korf BR. Medical genetics at a glance [Internet]. 3rd edition. Wiley; 2013. Available from: https://bibliu.com/users/saml/samlUCL?RelayState=eyJjdXN0b21fbGF1bmNoX3VybCI6IiMvdmlldy9ib29rcy85NzgxMTE4Njg5MDExL2VwdWIvT0VCUFMvY29udGVudHMuaHRtbCJ9
4.
Robinson TR, Wiley InterScience (Online service). Genetics for dummies [Internet]. 2nd ed. Hoboken, NJ: Wiley Pub; 2010. Available from: http://dx.doi.org/10.1002/9781118269275
5.
Amthor F. Neuroscience for dummies. Mississauga, Ont: Wiley; 2012.
6.
Johns P. Clinical neuroscience: an illustrated colour text [Internet]. Edinburgh: Churchill Livingstone; 2014. Available from: https://www.clinicalkey.com/student/content/toc/3-s2.0-C20090355117
7.
Kratz RF. Molecular & cell biology for dummies. Hoboken, NJ: Wiley; 2009.
8.
Alberts B, Bray D, Hopkin K, Johnson A, Lewis J, Raff MC, Roberts K, Walter P. Essential cell biology. Fourth edition. New York, NY: Garland Science; 2014.
9.
Barker RA, Cicchetti F, Robinson ESJ. Neuroanatomy and neuroscience at a glance [Internet]. Fifth edition. Hoboken, NJ: Wiley Blackwell; 2018. Available from: https://bibliu.com/users/saml/samlUCL?RelayState=eyJjdXN0b21fbGF1bmNoX3VybCI6IiMvdmlldy9ib29rcy85NzgxMTE5MTY4NDIzL2VwdWIvT1BTL2Z0b2MuaHRtbCJ9
10.
Levitan IB, Kaczmarek LK. The neuron: cell and molecular biology [Internet]. Fourth edition. [New York]: Oxford University Press; 2015. Available from: http://dx.doi.org/10.1093/med/9780199773893.001.0001
11.
Kandel ER, Schwartz JH, Jessell TM, Siegelbaum S, Hudspeth AJ, editors. Principles of neural science [Internet]. Fifth edition. New York: McGraw Hill Medical; 2013. Available from: http://ucl.alma.exlibrisgroup.com/view/action/uresolver.do?operation=resolveService&package_service_id=2910131910004761&institutionId=4761&customerId=4760
12.
Diamond MC, Scheibel AB, Elson LM. The human brain coloring book. 1st ed. New York: Barnes & Noble Books; 1985.
13.
Clarke C, Howard R, Rossor M, Shorvon SD, editors. Neurology: a Queen Square textbook [Internet]. Second edition. Chichester, West Sussex, UK: Wiley Blackwell; 2016. Available from: https://onlinelibrary.wiley.com/doi/book/10.1002/9781118486160
14.
Castiello U. The neuroscience of grasping. Nature Reviews Neuroscience. 2005 Sep;6(9):726–736.
15.
Davare M, Kraskov A, Rothwell JC, Lemon RN. Interactions between areas of the cortical grasping network. Current Opinion in Neurobiology. 2011 Aug;21(4):565–570.
16.
Gerbella M, Rozzi S, Rizzolatti G. The extended object-grasping network. Experimental Brain Research. 2017 Oct;235(10):2903–2916.
17.
Goodale MA, Meenan JP, Bülthoff HH, Nicolle DA, Murphy KJ, Racicot CI. Separate neural pathways for the visual analysis of object shape in perception and prehension. Current Biology. 1994 Jul;4(7):604–610.
18.
Grafton ST. The cognitive neuroscience of prehension: recent developments. Experimental Brain Research. 2010 Aug;204(4):475–491.
19.
Jeannerod M, Arbib MA, Rizzolatti G, Sakata H. Grasping objects: the cortical mechanisms of visuomotor transformation. Trends in Neurosciences. 1995 Jul;18(7):314–320.
20.
Johansson RS, Flanagan JR. Coding and use of tactile signals from the fingertips in object manipulation tasks. Nature Reviews Neuroscience. 2009 May;10(5):345–359.
21.
Lemon RN. Descending Pathways in Motor Control. Annual Review of Neuroscience. 2008 Jul;31(1):195–218.
22.
Picard N, Strick PL. Imaging the premotor areas. Current Opinion in Neurobiology. 2001 Dec;11(6):663–672.
23.
Jellinger KA. Neuropathology of sporadic Parkinson’s disease: Evaluation and changes of concepts. Movement Disorders. 2012 Jan;27(1):8–30.
24.
Kumaran R, Cookson MR. Pathways to Parkinsonism Redux: convergent pathobiological mechanisms in genetics of Parkinson’s disease. Human Molecular Genetics. 2015 Oct 15;24(R1):R32–R44.
25.
Surmeier DJ, Obeso JA, Halliday GM. Selective neuronal vulnerability in Parkinson disease. Nature Reviews Neuroscience. 2017 Feb;18(2):101–113.
26.
Walsh DM, Selkoe DJ. A critical appraisal of the pathogenic protein spread hypothesis of neurodegeneration. Nature Reviews Neuroscience. 2016 Apr;17(4):251–260.
27.
Stefanis L.  -Synuclein in Parkinson’s Disease. Cold Spring Harbor Perspectives in Medicine. 2012 Feb 1;2(2):a009399–a009399.
28.
Burré J. The Synaptic Function of α-Synuclein. Journal of Parkinson’s Disease. 2015 Oct 8;5(4):699–713.
29.
Xilouri M, Brekk OR, Stefanis L. Autophagy and Alpha-Synuclein: Relevance to Parkinson’s Disease and Related Synucleopathies. Movement Disorders. 2016 Feb;31(2):178–192.
30.
Dehay B, Vila M, Bezard E, Brundin P, Kordower JH. Alpha-synuclein propagation: New insights from animal models. Movement Disorders. 2016 Feb;31(2):161–168.
31.
Roosen DA, Cookson MR. LRRK2 at the interface of autophagosomes, endosomes and lysosomes. Molecular Neurodegeneration. 2016 Dec;11(1).
32.
Wolpert DM, Ghahramani Z. Computational principles of movement neuroscience. Nature Neuroscience. 2000 Nov 1;3(Supp):1212–1217.
33.
Friston K, Mattout J, Kilner J. Action understanding and active inference. Biological Cybernetics. 2011 Feb;104(1–2):137–160.
34.
Körding KP, Wolpert DM. Bayesian decision theory in sensorimotor control. Trends in Cognitive Sciences. 2006 Jul;10(7):319–326.
35.
Johansson RS, Flanagan JR. Sensory control of object manipulation. In: Nowak DA, Hermsdorfer J, editors. Sensorimotor Control of Grasping [Internet]. Cambridge: Cambridge University Press; 2009. p. 141–160. Available from: https://www.cambridge.org/core/product/identifier/CBO9780511581267A020/type/book_part
36.
Sarlegna FR, Mutha PK. The influence of visual target information on the online control of movements. Vision Research. 2015 May;110:144–154.
37.
Jakobson LS, Goodale MA. Factors affecting higher-order movement planning: a kinematic analysis of human prehension. Experimental Brain Research. 1991 Aug;86(1).
38.
Balendra R, Patani R. Quo vadis motor neuron disease? World Journal of Methodology. 2016;6(1).
39.
Bäumer D, Talbot K, Turner MR. Advances in motor neurone disease. Journal of the Royal Society of Medicine. 2014 Jan;107(1):14–21.
40.
Lemon RN. Descending Pathways in Motor Control. Annual Review of Neuroscience. 2008 Jul;31(1):195–218.
41.
Dietz V, Sinkjaer T. Spastic movement disorder: impaired reflex function and altered muscle mechanics. The Lancet Neurology. 2007 Aug;6(8):725–733.
42.
Blackstone C. Hereditary spastic paraplegia. Neurogenetics, Part II [Internet]. Elsevier; 2018. p. 633–652. Available from: https://linkinghub.elsevier.com/retrieve/pii/B9780444640765000417
43.
Mathias CJ, Bannister SR, editors. Autonomic Failure [Internet]. Oxford University Press; 2013. Available from: http://oxfordmedicine.com/view/10.1093/med/9780198566342.001.0001/med-9780198566342
44.
Iodice V, Low DA, Vichayanrat E, Mathias CJ. Cardiovascular autonomic dysfunction in MSA and Parkinson’s disease: Similarities and differences. Journal of the Neurological Sciences. 2011 Nov;310(1–2):133–138.
45.
Iodice V, Sandroni P. Autonomic Neuropathies. CONTINUUM: Lifelong Learning in Neurology. 2014 Oct;20:1373–1397.
46.
Institute of Neurology, Queen Square, National Hospital for Neurology and Neurosurgery (London, England). Neurology: a Queen Square textbook [Internet]. Second edition. Clarke C, Howard R, Rossor M, Shorvon SD, editors. Chichester, West Sussex, UK: John Wiley & Sons, Inc; 2016. Available from: https://onlinelibrary.wiley.com/doi/book/10.1002/9781118486160
47.
OMIM - Online Mendelian Inheritance in Man [Internet]. Available from: https://www.omim.org/
48.
Zrinzo L. The Role of Imaging in the Surgical Treatment of Movement Disorders. Neuroimaging Clinics of North America. 2010 Feb;20(1):125–140.
49.
Baev KV. A New Conceptual Understanding of Brain Function: Basic Mechanisms of Brain-Initiated Normal and Pathological Behaviors. Critical ReviewsTM in Neurobiology. 2007;19(2–3):119–202.
50.
Marsden CD, Obeso JA. The functions of the basal ganglia and the paradox of stereotaxic surgery in Parkinson’s disease. Brain. 1994;117(4):877–897.
51.
Akram H, Dayal V, Mahlknecht P, Georgiev D, Hyam J, Foltynie T, Limousin P, De Vita E, Jahanshahi M, Ashburner J, Behrens T, Hariz M, Zrinzo L. Connectivity derived thalamic segmentation in deep brain stimulation for tremor. NeuroImage: Clinical. 2018;18:130–142.