scholarly journals CAN MICROFLUIDIC SPERM SORTING HELP SEPARATION OF SPERMS WITH GOOD QUALITY DNA?

2021 ◽  
Vol 116 (3) ◽  
pp. e287
Author(s):  
Krishna Mantravadi ◽  
Durga Gedela Rao
Keyword(s):  
Author(s):  
Müge Keskin ◽  
Emre Göksan Pabuçcu ◽  
Tufan Arslanca ◽  
Özgür Doğuş Demirkıran ◽  
Recai Pabuçcu

2018 ◽  
Vol 7 (S3) ◽  
pp. S336-S347 ◽  
Author(s):  
Raheel Samuel ◽  
Haidong Feng ◽  
Alex Jafek ◽  
Dillon Despain ◽  
Timothy Jenkins ◽  
...  

2019 ◽  
Vol 20 (6) ◽  
pp. 1037-1045 ◽  
Author(s):  
Bohyun Hwang ◽  
Dongkyu Lee ◽  
Seung-Jun Hwang ◽  
Joong-Hwan Baek ◽  
Byungkyu Kim

2020 ◽  
Vol 10 (1) ◽  
Author(s):  
Chalinee Phiphattanaphiphop ◽  
Komgrit Leksakul ◽  
Rungrueang Phatthanakun ◽  
Trisadee Khamlor

Abstract Microfluidics is proposed as a technique for efficient sperm sorting, to achieve the ultimate goal of resolving infertility problems in livestock industry. Our study aimed to design a microfluidic sperm-sorting device (SSD) through a high-efficacy and cost- and time-effective fabrication process, by using COMSOL Multiphysics simulation and modeling software, and the design of experiment (DOE) method. The eight factors affecting SSD performance were established. The simulation was then run, and statistically significant factors were analyzed. Minitab16 was used to optimize the design modulus factor. By setting the statistical significance at p < 0.05, the factors affecting experimental structure were analyzed. At a desirability of 97.99, the optimal parameters for the microfluidic chip were: angle between sperm and medium inlet chambers (A = 43°), sperm inlet flow rate (B = 0.24 µL min−1), medium inlet flow rate (C = 0.34 µL min−1), and inlet and outlet chamber lengths (D = 5000 µm). These optima were then applied to microfluidics device construction. The device was produced using soft lithographic microfabrication techniques and tested on Holstein–Friesian bull sperm. The highest bull sperm-sorting performance for this microfluidic device prototype was 96%. The error between the simulation and the actual microfluidic device was 2.72%. Fluid viscosity ranges analysis-based simulations revealed acceptable fluid viscosity tolerances for the SSD. The simulation results revealed that the acceptable tolerance range for fluid viscosity was 0.00001–0.003 kg m−1 s−1. This optimally designed microfluidic chip-based SSD may be integrated into sperm x/y separation micro devices.


2018 ◽  
Vol 4 (3) ◽  
pp. 31
Author(s):  
James Koh ◽  
Xinhui Shen ◽  
Marcos

Sign in / Sign up

Export Citation Format

Share Document