Saturday, December 20, 2025

New research elucidates a master regulator of protein production

Proteins are among the most important molecular building blocks of life. They themselves are built from amino acids linked together based on the information in our genetic material. In this process, the genetic code is translated into a sequence of amino acids. However, this translation is only the first step. Often, special enzymes modify the new (nascent) proteins as they leave their cellular production site—the ribosome. Only after this can the proteins fulfill their diverse biological functions.

It has not been well understood how these enzymes work together to modify nascent proteins at the ribosome or how their activity is regulated and coordinated. Now an international team of researchers from Caltech, the University of Konstanz, and ETH Zurich has unraveled the complex for two consecutive protein modifications that affect about 40% of all proteins in mammals. It turns out the star of the show, something of a molecular control hub, is a relatively small chaperone protein complex called NAC (nascent polypeptide-associated complex).

Without NAC, all sorts of stress responses are triggered, causing proteins to get misfolded or sent to the wrong locations in the body.

"The essential chaperone NAC has been involved or implicated in a myriad of processes. It has been difficult to understand why a single small protein complex that looks very simple would impact all of these different processes," says Shu-ou Shan, the Altair Professor of Chemistry at Caltech, executive officer for biochemistry and molecular biophysics, and corresponding author of a new paper describing the work.

"But now we're starting to see the full picture of NAC as a high-order master regulator of protein production in the cell. It has become clear that NAC's job is to recruit diverse biogenesis factors to the ribosome and pair them with the appropriate nascent proteins that are being synthesized."

Essential for normal cell function

In the new paper, the researchers focus on two modifications that NAC orchestrates—the removal of the first amino acid, methionine, from the growing protein, followed by the attachment of what is known as an to the remaining end.

Both processes take place at the ribosomal tunnel exit, i.e., at the location where the proteins leave the ribosome as a growing chain of during synthesis. These modifications are essential for the majority of our proteins, as they influence multiple protein properties, such as their three-dimensional folding, lifespan, or interaction with other proteins, and thus the proper function of the proteins.

"A dysregulation of the processes involved in protein modification can have extremely negative consequences for the organism. It is associated with or diseases such as cancer and Parkinson's, for example," explains Elke Deuerling, professor of molecular microbiology at the University of Konstanz in Germany, and an author of the new paper.

The mechanism in detail

The time slot for the cleavage of methionine and the subsequent acetylation to occur smoothly is quite short. During this time, several enzymes must be brought to the right place and be regulated: MetAP1, which causes the cleavage of methionine, and NatA for the subsequent acetylation.

However, NatA is normally bound by an inhibitory protein, HYPK, which suppresses its function. By combining biochemical, structural, and in vivo experiments, the Caltech researchers and their collaborators have now succeeded in shedding light on how this complex process is controlled and how the macromolecules involved interact.

NAC is located at the exit of the ribosomal tunnel, where newly synthesized proteins emerge. From there, it recruits both MetAP1 and NatA and positions them with their biochemically active regions at the appropriate locations near the tunnel exit to access the nascent protein.

"In addition, NAC induces NatA to lose its inhibitory contact with HYPK. This ensures that NatA's function is only activated at the ribosome, where it can then mediate the desired acetylation," Shan says.

Shan's lab developed the tools that uncovered these essential roles of NAC in NatA function, providing the basis to further solve the structure of NAC bound to a ribosome with NatA and HYPK.

"Making synchronized ribosomes with a defined nascent chain length and composition and to have that in biophysical quantities is hard," Shan says. "My group has worked for many years to develop tools that allowed us to incorporate fluorescent dyes specifically into a nascent protein on the ribosome. That is how we detected interaction and recruitment of these enzymes."

Previous studies revealed that NAC also recruits other factors to the ribosomal tunnel besides the enzymes MetAP1 and NatA.

"We assume NAC has the function of an even more elaborate molecular control hub," says Martin Gamerdinger, co-author of the paper also from the University of Konstanz. "It ensures that the nascent proteins have access to different components of the cell's biochemical toolkit as they leave the , depending on the requirements."

The current study shows how NAC fulfills this important function in the specific case of methionine cleavage followed by an acetylation. It provides scientists with a clearer understanding of the way dysregulations of the components involved in the modification of proteins can lead to the development of disease. In the long term, this could function as a basis for the development of new therapeutic approaches in medicine.

Additional Caltech authors on the paper, "NAC guides a ribosomal multienzyme complex for nascent protein processing," are Alfred M. Lentzsch and Sowmya Chandrasekar. Denis Yudin, Alain Scaiola, Nenad Ban are co-authors from ETH Zurich.

 

 

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Saturday, September 14, 2019

Nano-sized cells of body may help in fighting cancer

The nano-sized cells that transfer genetic material to other cells in our body may turn into mini treatment to kill cancer cells, suggests a study.

What we've done is improve a therapeutic approach to delivering enzyme-producing genes that can convert certain drugs into toxic agents and target tumors, said the lead author of the study.


These drugs, or pro-drugs, start out as inactive compounds. But once they metabolise in the body, they're immediately activated and can get to work in fighting everything from cancer to headache. Aspirin is an example of pro-drug.


In this case, researchers used extracellular vesicles, or EVs, to deliver the enzyme-producing genes that could activate a prodrug combination therapy of ganciclovir and CB1954 in breast cancer cells.
Mini circle DNA and regular plasmid-- 2 different gene vectors that act as additional delivery mechanisms for DNA--were loaded into the vesicles to see which was better at helping transport treatment. This is known as a gene-directed enzyme, pro-drug therapy.


They found that the mini circle DNA was 14 times more effective at delivery and even more successful at killing the cancerous tumour.


Interestingly, the plasmid delivery method didn't show any tumour cell killing, the Dr. said. Yet the mini circle DNA therapy killed more than half of the breast cancer cells in the mice.


According to the researcher, this new approach could effectively become a better cancer treatment option than chemotherapy down the road.


Conventional chemotherapy isn't able to differentiate between tumours and normal tissue, so it attacks it all, he said. This non-specificity can cause severe side effects and insufficient drug concentration in tumours.


With EVs, treatment can be targeted and because of their compatibility with the human body, this type of delivery could minimise the risk of unwanted immune responses that can come with other gene therapies.


If EVs prove to be effective in humans, it would be an ideal platform for gene delivery and it could be used in humans sooner than we expect, the researcher said.


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Tuesday, May 26, 2015

New test to help early diagnosis of ovarian cancer

Opening up the possibility for early diagnosis of ovarian cancer, scientists have identified genetic material that distinguishes its cells from normal cells.

 These genetic material includes six mRNA isoforms produced by ovarian cancer cells but not normal cells could be used to diagnose early-stage ovarian cancer.

Ovarian cancer is very difficult to diagnose and treat, making it an especially fatal disease."We were inspired by many studies aimed at using DNA to detect cancer," said first author Christian Barrett at University of California, San Diego School of Medicine and Moores Cancer Center.

"But we wondered if we could instead develop an ovarian cancer detection test based on tumour-specific mRNA that has disseminated from cancer cells to the cervix and can be collected during a routine Pap test," Barrett said.

They identified six mRNA isoform molecules that have the tumour specificity required for an early detection diagnostic of ovarian cancer.

In contrast to DNA, mRNAs are complementary copies of the genes and carry the recipe for every protein that the cell will produce from the nucleus to the cytoplasm.

For the study, the team analyzed mRNA sequence data from 296 ovarian cancers and 1,839 normal tissue samples.


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Thursday, February 26, 2015

New paper strip test diagnoses Ebola, yellow fever and dengue in just 10 minutes

Early diagnoses of deadly diseases holds a vital key in ability of doctors to try and fend off the virus behind the disease and a new paper strip test developed by MIT researchers does just that. The new test can diagnose deadly Ebola, as well as other viral hemorrhagic fevers such as yellow fever and dengue fever, in just 10 minutes.

Currently utilised lab-based tests for Ebola are accurate, but they are time consuming as they involve sending patients’ blood samples to a lab that can perform advanced techniques such as polymerase chain reaction (PCR), which can detect genetic material from the Ebola virus. Some areas of Africa where Ebola and other fevers are endemic have limited access to this kind of technology.

“For many hemorrhagic fever viruses, like West Nile and dengue and Ebola, and a lot of other ones in developing countries, like Argentine hemorrhagic fever and the Hantavirus diseases, there are just no rapid diagnostics at all,” says Lee Gehrke, the Hermann L.F. von Helmholtz Professor in MIT’s Institute for Medical Engineering and Science (IMES).

The new paper-strip based test developed by MIT researchers relies on lateral flow technology, which is used in pregnancy tests and has recently been exploited for diagnosing strep throat and other bacterial infections.

Until now, however, no one has applied a multiplexing approach, using multicoloured nanoparticles, to simultaneously screen for multiple pathogens.

Unlike most existing paper diagnostics, which test for only one disease, the new MIT strips are colour-coded so they can be used to distinguish among several diseases.

To achieve that, the researchers used triangular nanoparticles, made of silver, that can take on different colours depending on their size.

The researchers created red, orange, and green nanoparticles and linked them to antibodies that recognise Ebola, dengue fever, and yellow fever.

As a patient’s blood serum flows along the strip, any viral proteins that match the antibodies painted on the stripes will get caught, and those nanoparticles will become visible.

This can be seen by the naked eye; for those who are colour blind, a cellphone camera could be used to distinguish the colours.

“When we run a patient sample through the strip, if you see an orange band you know they have yellow fever, if it shows up as a red band you know they have Ebola, and if it shows up green then we know that they have dengue,” Hamad-Schifferli said.

This process takes about 10 minutes, allowing health care workers to rapidly perform triage and determine if patients should be isolated, helping to prevent the disease from spreading further.

“As we saw with the recent Ebola outbreak, sometimes people present with symptoms and it’s not clear what they have,” said a visiting scientist in Massachusetts Institute of Technology’s Department of Mechanical Engineering and a member of the technical staff at MIT’s Lincoln Laboratory.

“We wanted to come up with a rapid diagnostic that could differentiate between different diseases,” he said.
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