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Quantum technologies—and quantum computers in particular—have the potential to shape the development of technology in the future. Scientists believe that quantum computers will help them solve problems that even the fastest supercomputers are unable to handle yet. Large international IT companies and countries like the United States and China have been making significant investments in the development of this technology. But because quantum computers are based on different laws of physics than conventional computers, laptops, and smartphones, they are more susceptible to malfunction.

An interdisciplinary research team led by Professor Jens Eisert, a physicist at Freie Universität Berlin, has now found ways of testing the quality of quantum computers. Their study on the subject was recently published in the scientific journal Nature Communications. These scientific quality control tests incorporate methods from physics, computer science, and mathematics.

Quantum physicist at Freie Universität Berlin and author of the study, Professor Jens Eisert, explains the science behind the research. “Quantum computers work on the basis of quantum mechanical laws of physics, in which or ions are used as computational units—or to put it another way—controlled, minuscule physical systems. What is extraordinary about these computers of the future is that at this level, nature functions extremely and radically differently from our everyday experience of the world and how we know and perceive it.”

This is good news! The article says this could lead to treatment of other cancers.


A particularly aggressive form of childhood cancer that forms in muscle tissue might have a new treatment option on the horizon.

Scientists have successfully induced rhabdomyosarcoma cells to transform into normal, healthy muscle cells. It’s a breakthrough that could see the development of new therapies for the cruel disease, and it could lead to similar breakthroughs for other types of human cancers.

“The cells literally turn into muscle,” says molecular biologist Christopher Vakoc of Cold Spring Harbor Laboratory.

#ted.
#wifi.
#internet.

What about 102,400 MBPS or 100GBPS. This is the speed of data transfer that you can achieve with LiFi Technology. With LiFi you can download 100 movies in just one second.
How’s this incredible internet speed possible?
It is possible with LED lights.
Watch this video till the end for a detailed introduction and truths of LiFi technology.

NEW HERE! TRY THIS STUFF
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Warp Drive Technology.
Eye as a Camera.
- https://www.youtube.com/watch?v=3Ur6HoAN3Vo.
Artificial Blood.
- https://www.youtube.com/watch?v=MX3LU0ClFPw&t=24s.
Wireless Electricity.
- https://www.youtube.com/watch?v=zGna5lTkBuc&t=65s.

📑 REFERENCES:
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[1] The Technology of LiFi — E Ramadhani and G P Mahardika 2018 IOP Conf. Ser.: Mater. Sci. Eng. 325 012013
- https://bit.ly/3yMqSK9
[2] How Wireless Communication Works.
- https://bit.ly/3uUZZmq.
[3] Spectrum Crunch FAQ
- https://bit.ly/3AUCz47
[4] A Review Paper on LiFi Technology — Volume 5, Issue 23, International Journal of Engineering Research & Technology (IJERT)
- https://bit.ly/3yCAEP6
[5] LiFi Study Paper Approved.
- https://bit.ly/3uOHLCL
[6] LiFi vs WiFI
- https://bit.ly/3II3zWt.
[7] LiFi Pros and Cons.
- https://bit.ly/3oaPsQd.
[8] How Does LiFi Work?
- https://bit.ly/3o8t3De.
[9] What is LiFi?
- https://bit.ly/3aJam5P
[10] LiFi Wikipedia.
- https://bit.ly/3cmhe9u.

WHO ARE WE?

Rohit Chikkaraddy/ University of Birmingham.

Mid-infrared, as the name suggests, lies between the infrared spectrum’s near and far wavelengths, just outside those of visible light. The mid-infrared spectrum has gained particular importance as it has been useful for multiple applications ranging from military to environmental and medical treatments and studying celestial objects.

1 Department of Biotechnology, School of Science, GITAM (Deemed to be University), Visakhapatnam, Andhra Pradesh, 530,045, India; 2 Department of Cell and Developmental Biology, University of Illinois at Urbana-Champaign, Urbana, IL, 61,801, USA

Correspondence: Sireesha V Garimella; Pankaj Chaturvedi, Email [email protected]; [email protected]

Abstract: Cancer continues to rank among the world’s leading causes of mortality despite advancements in treatment. Cancer stem cells, which can self-renew, are present in low abundance and contribute significantly to tumor recurrence, tumorigenicity, and drug resistance to various therapies. The drug resistance observed in cancer stem cells is attributed to several factors, such as cellular quiescence, dormancy, elevated aldehyde dehydrogenase activity, apoptosis evasion mechanisms, high expression of drug efflux pumps, protective vascular niche, enhanced DNA damage response, scavenging of reactive oxygen species, hypoxic stability, and stemness-related signaling pathways. Multiple studies have shown that mitochondria play a pivotal role in conferring drug resistance to cancer stem cells, through mitochondrial biogenesis, metabolism, and dynamics. A better understanding of how mitochondria contribute to tumorigenesis, heterogeneity, and drug resistance could lead to the development of innovative cancer treatments.