Commentary: Deficiencies in Socioeconomic Training During Neurosurgical Training

Neurosurgery ◽  
2018 ◽  
Vol 84 (1) ◽  
pp. E79-E85
Author(s):  
Michael Karsy ◽  
Michael S Park ◽  
Kimon Bekelis ◽  
John A Braca ◽  
Brian V Nahed ◽  
...  
2020 ◽  
Vol 48 (3) ◽  
pp. E2
Author(s):  
Walter C. Jean ◽  
Trong Huynh ◽  
Tuan A. Pham ◽  
Hung M. Ngo ◽  
Hasan R. Syed ◽  
...  

The current report is the first of its kind in describing the neurosurgical training in modern-day Vietnam. Starting with in-depth face-to-face interviews, followed by electronically distributed questionnaires, a detailed picture of the training systems emerged.Neurosurgical training in Vietnam is multifaceted and dichotomous. The country of nearly 100 million people currently has only one neurosurgery-specific residency program, at the University of Medicine and Pharmacy at Ho Chi Minh City (UMPHCMC). This program lasts for 3 years, and Westerners might recognize many similarities to programs native to their countries. A similar training program exists in the north, at the Hanoi Medical University, but at this institution, trainees focus on neurosurgery only in the final year of their 3-year training. Neurosurgical training that resembles the program in Hanoi permeates the rest of the country, and the goal for all of the programs is to rapidly produce surgeons who can be dispersed throughout the country to treat patients requiring urgent neurosurgical procedures who are medically unsuitable for transfer to large urban centers and multispecialty hospitals. For the privilege of practicing elective neurosurgery, trainees around the country are required to acquire further training in Ho Chi Minh City or Hanoi or during fellowships abroad.A clear description of the neurosurgical training systems in Vietnam is hard to achieve, as there exist many diverse pathways and no standard definition of the endpoint for training. Unification and a clearer certification standard will likely help to elevate the standards of training and the state of neurosurgical practice in Vietnam.


Neurosurgery ◽  
1987 ◽  
Vol 21 (2) ◽  
pp. 263-265
Author(s):  
Takanori Fukushima ◽  
Kintomo Takakura

2019 ◽  
Vol 130 (5) ◽  
pp. 1663-1671
Author(s):  
Ulas Cikla ◽  
Balkan Sahin ◽  
Sahin Hanalioglu ◽  
Azam S. Ahmed ◽  
David Niemann ◽  
...  

OBJECTIVECerebrovascular bypass surgery is a challenging yet important neurosurgical procedure that is performed to restore circulation in the treatment of carotid occlusive diseases, giant/complex aneurysms, and skull base tumors. It requires advanced microsurgical skills and dedicated training in microsurgical techniques. Most available training tools, however, either lack the realism of the actual bypass surgery (e.g., artificial vessel, chicken wing models) or require special facilities and regulations (e.g., cadaver, live animal, placenta models). The aim of the present study was to design a readily accessible, realistic, easy-to-build, reusable, and high-fidelity simulator to train neurosurgeons or trainees on vascular anastomosis techniques even in the operating room.METHODSThe authors used an anatomical skull and brain model, artificial vessels, and a water pump to simulate both extracranial and intracranial circulations. They demonstrated the step-by-step preparation of the bypass simulator using readily available and affordable equipment and consumables.RESULTSAll necessary steps of a superficial temporal artery–middle cerebral artery bypass surgery (from skin opening to skin closure) were performed on the simulator under a surgical microscope. The simulator was used by both experienced neurosurgeons and trainees. Feedback survey results from the participants of the microsurgery course suggested that the model is superior to existing microanastomosis training kits in simulating real surgery conditions (e.g., depth, blood flow, anatomical constraints) and holds promise for widespread use in neurosurgical training.CONCLUSIONSWith no requirement for specialized laboratory facilities and regulations, this novel, low-cost, reusable, high-fidelity simulator can be readily constructed and used for neurosurgical training with various scenarios and modifications.


2020 ◽  
Vol 139 ◽  
pp. 728-731
Author(s):  
Stephen P. Miranda ◽  
Gregory Glauser ◽  
Connor Wathen ◽  
Rachel Blue ◽  
Ryan Dimentberg ◽  
...  

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