Enzyme Kinetics of Reversible Inhibition

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@eragon2121 7 жыл бұрын

I want to know who is responsible for naming two very different things respectively uncompetitive and non-competitive. ^^

@kyleestrada5179 7 жыл бұрын

If you sold all your whiteboard writings in notes form. I would buy them.

@aaroncastro7227 8 жыл бұрын

You are great. Thanks. It's a real gift to be able to explain to others concepts so well.

@SooVeryAwesome 8 жыл бұрын

Thank you so much, our of the few videos, I've watched, this was the most thorough and easy to understand. I really appreciate your enunciations too!

@zohoorz2010 9 жыл бұрын

Thanks for this PERFECT explanation

@AKLECTURES 9 жыл бұрын

Thanks! Glad you liked it :)

@unespebb2220 8 жыл бұрын

Simply the best. We are students from a college in Brazil and we appreciate the perfects explanations for our graduation.

@siddikabegum393 3 жыл бұрын

Your videos are incredible and concise, just what we need!

@jatzkiddin 8 жыл бұрын

I love your videos so much. Thank you! You explain things so well!

@North-my7kr 6 жыл бұрын

I want to come back and say thank you. I got a A in my biochem, enzyme kinetics report... I am so grateful

@maryamesmaeili7592 9 жыл бұрын

Finally I got it ! Thank you for making this clear !

@aanalbhatt2444 8 жыл бұрын

I appreciate your work. Your lectures have always helped me. Thank you! :)

@TheAnGryPOolMaN 9 жыл бұрын

I absolutely love your lectures. Keep them coming! I am giving all your videos that I watch a thumbs up to help your channel

@AKLECTURES 9 жыл бұрын

TheAnGryPOolMaN thank you tons! i appreciate that! :-D

@karandoda1835 5 жыл бұрын

awesome ..sir your explaination are the best one that i have i ever seen...thanks

@sharnyasuraj9566 6 жыл бұрын

Thanks. You are a perfect teacher. God bless you.

@anondoggo 4 жыл бұрын

This is the explanation I was looking for.

@Sufiano98 2 жыл бұрын

Hello sir, your lectures are so amazing to me and others all over the world. Thanks for everything you did and also doing now. Sir, I have a question on uncompetitive inhibition, You say the turnover number does not affected by inhibitor but you also say turnover number means transformation of substrates into products in a certain period time. In this inhibition there will no products be formed from the ESI complex.

@Parralyzed 4 жыл бұрын

There is an error: for UCI kcat must be lower since Vmax is lowered. What doesn't change is catalytic efficiency (kcat/Km) on account of the lower Km,app. (cf. the corresponding video in this series)

@rw4580 3 жыл бұрын

Thank you for all your videos 🙏🏻

@mariams2020 5 жыл бұрын

This is super helpful. Thank you!

@marziehmoeenfard1250 3 жыл бұрын

Clear and perfect explanation. Thanks

@marisaa1138 6 жыл бұрын

You are an angel! seriously!

@NehaSingh-sc8ws 7 жыл бұрын

Hello sir, First of all I would like to say that your lectures are amazing. Thanks for all the help. I have a query. In the second part of this topic you explained how in non competitive inhibition the kcat is lowered but not the Km. My question is that once the inhibitor binds to the enzyme it changes the shape of the active site which lowers the Kat. But once the shape of the active site is changed how does the substrate still has a likelihood of binding the active site? The binding of substrate should also decrease!

@quyennguyentri8993 4 жыл бұрын

Have you got the answer yet, after 2 year :3

@TRUMANM 3 жыл бұрын

@@quyennguyentri8993 The inhibition is reversible, meaning the inhibitor has a chance of detaching from the enzyme. Once it detaches, the substrate can bind again.

@jesswalton8452 3 жыл бұрын

So with non-competitive inhibition, the inhibitor does not change the shape of the enzyme, because both the substrate and the inhibitor can bind to the enzyme uncompetitively, forming the enzyme substrate-inhibitor complex. However, when the inhibitor binds to the enzyme-substrate mixture - the enzyme cannot catalyse the reaction of the substrate and therefore no products are formed - lowering the kcat value. But the inhibitor can also dissociate away from the enzyme which can enable the enzyme-substrate mixture to catalyse (providing no inhibitor is bound) forming products. I think your explanation is referring to uncompetitive inhibition. I know this post is 3yrs old but thought it may help someone else :).

@sarahsalahuddin7361 6 жыл бұрын

I don't know you, but I love you. Thank you!

@hughburt1267 4 жыл бұрын

this guy nails it every time

@vanessaescalera4117 4 ай бұрын

I learned this in 20 minutes as opposed to my professor's 3-4 hour lecture

@hasnainbangash4832 3 жыл бұрын

its just great

@FulfillingYoga 9 жыл бұрын

hi great Video :-) I have a question about the kompetitive Inhibitor ; Why does E(total) not Change , if we have a competive Inhibitor than we won´t have an ES complexe than E(total ) should become lower no?

@soheilavafadar8999 2 жыл бұрын

Hello Professor All I can say:Thank you.

@riyohussainmuhammad2324 4 жыл бұрын

Hello sir, First of all I would like to say that your lectures are amazing. Thanks for all the help. i want to ask you something. if you have used superpro, I want to ask, what is meant by "K mic" in superpro? The equation is 1-[S]/Kmic. I still don't know what the meaning of the equation is. Thank you so much for the answer.

@user-tm6nn7ti7z 9 жыл бұрын

BEST lecture ever! Really I am a your BIG fan!

@AKLECTURES 9 жыл бұрын

Sylvia Eunhyoung Kim :-) thank you Sylvia! thanks for watching and subscribing! Appreciate the support

@user-tm6nn7ti7z 9 жыл бұрын

It is my big pleasure. I deeply appreciate your efforts and excellent explanation.

@chandankashyap8049 8 жыл бұрын

IMMENSELY BENEFITTED

@agustinabasso3020 7 жыл бұрын

This is a super great explanation! Thank you very much :) (Btw you only have thumbs up! :) )

@iiexplore1 4 жыл бұрын

This man deserves a gold metal.

@isun7995 2 жыл бұрын

Ur awsomee

@shayamorre2882 4 жыл бұрын

I love you sir 😍

@aniruddhg.r 4 жыл бұрын

Hai Sir, I have a query!! In non- competitive inhibition, why doesn't the inhibitor bind directly to the active site of the enzyme. If that even happens, what will the result be??

@wirtsleg 6 жыл бұрын

Question regarding competitiv inhibitors. You mention that the Km value does change, namely it increases, however, the Vmax value remains the same. All good. The issue: When you calculate Km, you use V max / 2. Right? But if the Vmax doesn't change, the Km value would be the same in both cases (when there's a competitiv inhibitor versus when there isn't). But as was just mentioned, the Km does in fact change, which should yield a different Km value but how can it do that if the Vmax remains the same? Hopefully you understand my reasoning. Probably something I just missed... appreciate some help

@user-jw4lg1pf5h 5 жыл бұрын

Vmax/2 is NOT actually equal to Km, it “corresponds” to Km, they form a couple of coordinates (x,y) where x is Km and y is Vm/2. So, since we project the Vm/2 value on the curve to find the Km, that means that the latter "depends" on the slope of the curve, which in not the same between the inhibitive and the non inhibitive case. I hope I got this right myself, and that I used the proper scientifique expressions since English is not my learning language

@anondoggo 4 жыл бұрын

For uncompetitive inhibition, why do we reach the conclusion for kcat based on the enzyme's behavior when the inhibitor is not binded? Logically, shouldn't we consider the situation when the inhibitor is binded, since we're analyzing the inhibitor's affect?

@anondoggo 4 жыл бұрын

Oh it stopped prematurely but ok. I think the reason we consider the activity of the active site when it's unbinded by inhibitor is because the active site is unaffected by the inhibitor, so it has normal kcat. But for non-competitive inhibition, the active site is affected by the inhibitor, so some of the active site cannot catalyze reactions anymore. Thus, kcat decreases?