Literature DB >> 27604711

Rodent Models of Traumatic Brain Injury: Methods and Challenges.

Niklas Marklund1.   

Abstract

Traumatic brain injury (TBI) has been named the most complex disease in the most complex organ of the body. It is the most common cause of death and disability in the Western world in people <40 years old and survivors commonly suffer from persisting cognitive deficits, impaired motor function, depression and personality changes. TBI may vary in severity from uniformly fatal to mild injuries with rapidly resolving symptoms and without doubt, it is a markedly heterogeneous disease. Its different subtypes differs in their pathophysiology, treatment options and long-term consequences and to date, there are no pharmacological treatments with proven clinical benefit available to TBI patients. To enable development of novel treatment options for TBI, clinically relevant animal models are needed. Due to their availability and low costs, numerous rodent models have been developed which have substantially contributed to our current understanding of the pathophysiology of TBI. The most common animal models used in laboratories worldwide are likely the controlled cortical impact (CCI) model, the central and lateral fluid percussion injury (FPI) models, and weight drop/impact acceleration (I/A) models. Each of these models has inherent advantages and disadvantages; these need to be thoroughly considered when selecting the rodent TBI model according to the hypothesis and design of the study. Since TBI is not one disease, refined animal models must take into account the clinical features and complexity of human TBI. To enhance the possibility of establishing preclinical efficacy of a novel treatment, the preclinical use of several different experimental models is encouraged as well as varying the species, gender, and age of the animal. In this chapter, the methods, limitations, and challenges of the CCI and FPI models of TBI used in rodents are described.

Entities:  

Keywords:  Controlled cortical impact (CCI); Fluid percussion injury (FPI); Mice; Neurodegeneration; Outcome; Rats; Traumatic brain injury

Mesh:

Year:  2016        PMID: 27604711     DOI: 10.1007/978-1-4939-3816-2_3

Source DB:  PubMed          Journal:  Methods Mol Biol        ISSN: 1064-3745


  17 in total

Review 1.  Neurotherapeutic capacity of P7C3 agents for the treatment of Traumatic Brain Injury.

Authors:  Meghan O Blaya; Joseph M Wasserman; Andrew A Pieper; Thomas J Sick; Helen M Bramlett; W Dalton Dietrich
Journal:  Neuropharmacology       Date:  2018-09-17       Impact factor: 5.250

Review 2.  Challenges and demand for modeling disorders of consciousness following traumatic brain injury.

Authors:  John C O'Donnell; Kevin D Browne; Todd J Kilbaugh; H Isaac Chen; John Whyte; D Kacy Cullen
Journal:  Neurosci Biobehav Rev       Date:  2018-12-11       Impact factor: 8.989

3.  Models of Traumatic Brain Injury in Aged Animals: A Clinical Perspective.

Authors:  Aiwane Iboaya; Janna L Harris; Alexandra Nielsen Arickx; Randolph J Nudo
Journal:  Neurorehabil Neural Repair       Date:  2019-11-13       Impact factor: 3.919

4.  Rodent Behavioral Testing to Assess Functional Deficits Caused by Microelectrode Implantation in the Rat Motor Cortex.

Authors:  Monika Goss-Varley; Andrew J Shoffstall; Keith R Dona; Justin A McMahon; Sydney C Lindner; Evon S Ereifej; Jeffrey R Capadona
Journal:  J Vis Exp       Date:  2018-08-18       Impact factor: 1.355

5.  Adaptive reorganization of retinogeniculate axon terminals in dorsal lateral geniculate nucleus following experimental mild traumatic brain injury.

Authors:  Vishal C Patel; Christopher W D Jurgens; Thomas E Krahe; John T Povlishock
Journal:  Exp Neurol       Date:  2016-12-28       Impact factor: 5.330

Review 6.  Translating striatal activity from brain slice to whole animal neurophysiology: A guide for neuroscience research integrating diverse levels of analysis.

Authors:  Howard Casey Cromwell
Journal:  J Neurosci Res       Date:  2019-06-30       Impact factor: 4.164

7.  Seizures are a druggable mechanistic link between TBI and subsequent tauopathy.

Authors:  Hadeel Alyenbaawi; Richard Kanyo; Laszlo F Locskai; Razieh Kamali-Jamil; Michèle G DuVal; Qing Bai; Holger Wille; Edward A Burton; W Ted Allison
Journal:  Elife       Date:  2021-02-02       Impact factor: 8.140

8.  Microglial process convergence on axonal segments in health and disease.

Authors:  Savannah D Benusa; Audrey D Lafrenaye
Journal:  Neuroimmunol Neuroinflamm       Date:  2020-03-21

9.  Intranasal Administration of the Antisecretory Peptide AF-16 Reduces Edema and Improves Cognitive Function Following Diffuse Traumatic Brain Injury in the Rat.

Authors:  Fredrik Clausen; Hans-Arne Hansson; Johan Raud; Niklas Marklund
Journal:  Front Neurol       Date:  2017-02-14       Impact factor: 4.003

10.  A new multiple trauma model of the mouse.

Authors:  Stefanie Fitschen-Oestern; Sebastian Lippross; Tim Klueter; Matthias Weuster; Deike Varoga; Mersedeh Tohidnezhad; Thomas Pufe; Stefan Rose-John; Hagen Andruszkow; Frank Hildebrand; Nadine Steubesand; Andreas Seekamp; Claudia Neunaber
Journal:  BMC Musculoskelet Disord       Date:  2017-11-21       Impact factor: 2.362

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