쉐도잉 연습: Genetic Engineering and Diseases – Gene Drive & Malaria - 영상으로 영어 말하기 배우기

레슨 만드는 중...
1
What if you could use genetic engineering to stop humanity's most dangerous predator, the deadliest animal on the planet responsible for the death of billions, the mighty mosquito? Along with other diseases it plays host to Malaria, one of the cruelest parasites on Earth possibly the single biggest killer of humans in history.
2
In 2015 alone hundreds of millions were infected and almost half a million people died.
3
A new technology could help us eradicate Malaria forever, but to do so we need to engineer a whole animal population.
4
This is not a hypothetical problem, the modified mosquitoes already exist in a lab.
5
Should we use the technology, and is malaria bad enough to risk it?
6
(Intro Music) Malaria is caused by a group of microorganisms: Plasmodia, very weird microorganisms that consists of just a single-cell, they're parasites that completely rely on mosquitoes. Malaria always starts with an insect bite.
7
In it's salivary glands, thousands of sporozoites wait until the insect penetrates your skin, immediately after invading you they head for the liver where they quietly enter big cells and hide from the immune system. For up to a month they stay here in stealth mode consuming the cells alive and changing into their next form: small drop like merozoites, they multiply generating thousands of themselves and then burst out of the cells. So thousands of parasites head into the bloodstream to look for their next victims, Red blood cells, to stay unnoticed, they wrap themselves in the membranes of the cells they killed. Imagine that! Killing someone from the inside and then taking their skin as camouflage, brutal!
8
They now violently attack red blood cells, multiplying inside them until they burst then finding more red blood cells and this cycle repeats over and over.
9
Pieces of dead cells spread lots of toxic waste material, which activates a powerful immune response causing flu-like symptoms, among the symptoms are high fever, sweats and chills, convulsions, headaches and sometimes vomiting and diarrhea. If malaria breaches the blood-brain barrier it can cause coma, neurological damage or death. The parasites are ready for evacuation now.
10
When another mosquito bites the infected human they get a ride, the cycle can start over.
11
In 2015, the Zika virus, which causes horrible birth defects if it infects pregnant women, spread rapidly into new areas around the globe. It too is carried by a mosquito. The mosquito is the perfect carrier for human diseases they've been around for at least 200 million years. There are trillions of them and a single one can lay up to 300 eggs at a time. They are practically impossible to eradicate and the perfect parasite taxi. But today we have a new revolutionary technology, that could enable us to finally win the war against them; CRISPR. For the first time in human history, we have the tools to make fast, large-scale changes to entire species, changing their genetic information as we please.
12
So instead of attacking isolated groups of insects, why not just change the types that transmit diseases?
13
Using genetic engineering, scientists successfully created a strain of mosquitoes that are immune to the malaria parasite by adding a new antibody gene that specifically targets plasmodium. These mosquitoes will never spread malaria. But just changing genetic information is not enough. The edits would only be inherited by half the offspring because most genes have two versions inside the genome as a fail-safe. So after just two generations, at most only half of the offspring would carry the engineered gene. In a population of billions of mosquitoes they would hardly make a difference.
14
A genetic engineering method called the gene drive solves this problem.
15
It forces the new gene to become dominant in the following generations overpowering the old gene almost completely.
16
Thanks to this twist, 99.5% of all the engineered mosquitoes offspring will carry the anti-malaria edit. If we were to release enough engineered mosquitoes into the wild to mate with normal mosquitoes, the malaria blocking gene would spread extremely quickly.
17
As the new gene becomes a permanent feature of the mosquito population, Plasmodium would lose its home base.
18
Scientists hope that the change would be so fast that they could not adapt to it quickly enough.
19
Malaria could virtually disappear.
20
If you take into account that maybe half a million children are killed by it every year, about five have died since this video started. Some scientists argue that we should use the technology sooner, rather than later.
21
The mosquitoes themselves would probably only profit from this, they don't have anything to gain from carrying parasites and this might only be the first step Malaria might just be the beginning.
22
Different mosquitoes also carry Dengue fever and Zika, ticks transmit Lyme disease, flies transmit sleeping sickness fleas transmit the plague. We could save millions of lives and prevent suffering on an unbelievable scale. So, why haven't we done this yet?
23
For one, CRISPR editing is barely four years old, so until very recently we just couldn't do it as fast and easily. And there are valid concerns.
24
Never before have humans consciously changed the genetic code of a free-living organism on this scale.
25
Once we do it, there is no going back. So it has to be done right, because there could be unwanted consequences if we set out to edit nature.
26
In this specific case of malaria though, the risk might be acceptable since the genetic modification doesn't make a big change in the overall genome.
27
It only changes a very specific part.
28
The worst-case scenario here, is probably that it might not work or that the parasite adapts in a negative way.
29
There is still much debate.
30
Technology as powerful as gene drive, needs to be handled with a lot of care but at some point we have to ask ourselves: Is it unethical to not use this technology, when every day 1,000 children die.
31
Humanity has to decide how to act on this in the next few years.
32
The public discussion is way behind the technology in this case.
33
What do you think?
34
This video was made possible in part by viewer donations on Patreon. If you want to help us make more videos like this and get nice rewards in return you can do so here. We really appreciate it. If you want to learn more about the topic of genetic engineering, we have another video about CRISPR and GMOs, and in case that's too much biology for you, here's a space playlist.

이 비디오로 말하기 연습을 해야 하는 이유는?

말하기 연습은 영어 실력을 향상시키는 데 매우 중요한 요소입니다. 이 비디오에서는 유전자 공학과 말라리아에 대한 흥미로운 주제를 다루고 있어, 말하기 연습을 위한 훌륭한 맥락을 제공합니다. 비디오 내용을 통해 우리는 과학적 사실을 논의하고, 심도 있는 질문을 던지며, 서로 다른 관점을 표현할 수 있는 기회를 가질 수 있습니다. 이러한 실시간 대화는 IELTS 스피킹에서도 점수를 높일 수 있는 좋은 기회입니다. 또한, 이 비디오와 같은 전문적인 주제로 대화함으로써 더 많은 어휘와 표현을 익히는 데 도움이 됩니다.

문맥 속 문법 및 표현

비디오에서 사용된 몇 가지 주요 구조와 표현을 분석해 봅시다:

  • What if you could... - 가정법 사용: 이 표현은 가능성을 탐색하는 데 유용하며, 이야기를 더 흥미롭게 만듭니다.
  • There are trillions of them... - 다수의 존재를 언급할 때 사용되는 간결한 구조로, 대규모 정보를 전달하는 데 효과적입니다.
  • It could help us eradicate... - 'could' 사용을 통해 미래의 가능성을 표현, 이는 불확실성을 전달합니다.
  • For the first time in human history... - 시간적 맥락을 강조하며, 청중의 관심을 끌 수 있는 강력한 표현입니다.

이러한 구조들은 shadow speak 연습에도 유용하게 활용될 수 있으며, 다양한 주제를 논의하는 데 필요한 기술을 키우는 데 도움이 됩니다.

일반적인 발음 트랩

비디오에서 발음하기 어려운 단어와 억양을 살펴보면:

  • Malaria - 이 단어의 정확한 발음을 익히는 것이 중요하며, 특히 'a' 발음이 어색할 수 있습니다.
  • Parasite - 'para'의 발음이 강세를 받으며, 음절을 정확히 나누어 발음하는 연습이 필요합니다.
  • CRISPR - 이 단어와 마찬가지로 약어 발음이 어색할 수 있으니, 강세를 명확히 하고 발음을 연습하세요.

또한, 이러한 단어들을 포함하여 영어 발음 교정을 위해 반복적으로 연습하는 것이 좋습니다. 영어 쉐도잉 기법을 활용하여 비디오의 발음과 억양을 직접 따라 해봄으로써 자연스러운 발음으로 개선될 수 있습니다.

쉐도잉이란? 영어 실력을 빠르게 키우는 과학적 방법

쉐도잉(Shadowing)은 원래 전문 통역사 훈련을 위해 개발된 언어 학습 기법으로, 다언어 학자인 Dr. Alexander Arguelles에 의해 대중화된 방법입니다. 핵심 원리는 간단하지만 매우 강력합니다: 원어민의 영어를 들으면서 1~2초의 짧은 지연으로 즉시 소리 내어 따라 말하는 것——마치 '그림자(shadow)'처럼 화자를 따라가는 것입니다. 문법 공부나 수동적인 청취와 달리, 쉐도잉은 뇌와 입 근육이 동시에 실시간으로 영어를 처리하고 재현하도록 훈련합니다. 연구에 따르면 이 방법은 발음 정확도, 억양, 리듬, 연음, 청취력, 말하기 유창성을 크게 향상시킵니다. IELTS 스피킹 준비와 자연스러운 영어 소통을 원하는 분들에게 특히 효과적입니다.