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Scientists Analyze 267 Receptors That Control Protein Fate in Rare Diseases

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Researchers from the International Institute of Molecular and Cell Biology in Warsaw (IIMCB) say they have created the first systematic catalog of the substrate receptors of cullin–RING ligases and analyzed how their genetic variants may translate into disease symptoms. Their review article “Cullin-RING receptors in rare disease biology” appears in Trends in Cell Biology.

Wojciech Pokrzywa, PhD [IIMCB]
Wojciech Pokrzywa, PhD [IIMCB]

“In rare diseases, we often identify a variant in a particular gene without immediately understanding its biological consequences. Our work shows that when such a variant affects a substrate receptor, it can disrupt protein recognition, impair the ligase complex, or disturb other cellular processes important for the organism’s development and function. This makes it easier to connect a genetic change with the disease mechanism and understand why it leads to particular symptoms,” said Wojciech Pokrzywa, PhD, head of the laboratory of protein metabolism at IIMCB.

Cells constantly control the fate of their proteins. They remove proteins that are worn out or no longer needed, but can also alter their activity, localization, or interactions with other molecules. The ubiquitin–proteasome system plays a key role in this process. Its enzymes tag selected proteins with ubiquitin, which acts as a molecular label. Depending on the type of tag, a protein may be directed for degradation by the proteasome—the cell’s molecular “shredder”—or subjected to another form of regulation.

Cullin–RING ligases belong to the largest family of E3 enzymes responsible for attaching these tags. Their precision depends on substrate receptors, which recognize the specific proteins that the ligase acts upon. The IIMCB scientists focused their work on the role of these receptors in genetic diseases.

The authors combined data on receptors’ function, tissue expression, and associations with different types of disease. They found that neurodevelopmental and neuromuscular symptoms are particularly common in diseases linked to these receptors, even though most of the receptors do not clearly show tissue-specific expression.

Their analyses therefore indicate that the clinical presentation cannot be explained solely by the sites of protein expression. Instead, other important factors may include the substrates they recognize, gene activity at different stages of development, the vulnerability of particular cell types, gene dosage, and the effect of a specific variant on the function of the entire cullin–RING ligase complex.

267 receptors, 93 linked to genetic diseases 

“We created the first systematic catalog of 267 cullin–RING ligase substrate receptors, 93 of which have already been linked to genetic diseases. This resource can serve as a reference point for research into rare diseases and the ubiquitin–proteasome system,” noted Natalia Szulc, a PhD student in the laboratory of protein metabolism at IIMCB and the first author of the article.

“It can help identify further potential disease genes and interpret variants detected in patients. It also facilitates studies into why different mutations in the same gene can produce different symptoms and disease courses. The catalog may also help reconstruct networks of relationships between receptors, their substrates, and other ligases, which is important for understanding why cells can sometimes compensate for the effects of a mutation, while in other cases disease develops.”

Targeted protein degradation is now an important direction in the development of new therapies, Pokrzywa added.

“Rare diseases show how precisely the ubiquitin–proteasome system must operate: altering a single component can have serious consequences that emerge only in particular tissues or at specific stages of development,” Szulc said.

“By analyzing variants found in patients, we can better understand which features of substrate receptors determine the function of cullin–RING complexes, which substrate interactions might be amenable to modulation, and where the limitations of therapies based on targeted protein degradation may lie. This provides valuable guidance for designing safer and more precise therapeutic strategies,” said Pokrzywa.

The post Scientists Analyze 267 Receptors That Control Protein Fate in Rare Diseases appeared first on GEN – Genetic Engineering and Biotechnology News.

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New webinar: Tackling drug discovery challenges in cancer research

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Cancer cells

Hosted by Drug Discovery World and supported by Sartorius and BioIVT, this webinar will explore the opportunities and challenges that exist within cancer research drug discovery and development.

You will hear from Dr Sudha Rao, Chief Scientific Officer of Kazia Therapeutics, Karol Budzik, PhD, Business Development Associate at Vyriad Therapeutics and Lars van der Veen, Chief Scientific Officer at iOnctura.

Presentations will cover how cancer treatments have shifted towards reprogramming the biology driving tumour growth, immune escape and treatment resistance, the trajectory that in vivo CAR-T treatments are taking, and how challenging tumours burdened by stroma and immune-mediated resistance can be tackled.

Q&A with the speakers follows the presentations.

Register for free now.

The post New webinar: Tackling drug discovery challenges in cancer research appeared first on Drug Discovery World (DDW).

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Psilocybin proves promising in neuropathic pain mouse study

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Amid the rise of psychedelics in the mental health space, researchers have begun to explore psilocybin as a treatment for chemotherapy-induced peripheral neuropathy.

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New Spectrometry Technique Could Aid Formulation Development

New Spectrometry Technique Could Aid Formulation Development

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A new technique combining two forms of spectrometry could help biopharmaceutical companies improve their choice of formulation buffer for antibody manufacturing by revealing how molecular forms and three-dimensional shapes of complex biologics respond to their environment. That’s the view of Christian Bleiholder, PhD, a professor at Florida State University who helped develop the technique.

According to Bleiholder, what happens structurally when a complex biological molecule, such as an antibody or viral spike protein, binds to its target is currently poorly understood.

“This is where [this approach] can help with the bioprocessing and formulation,” he says, as structural changes “can affect the lifespan [of the product] and lead to issues, such as aggregation.”

Because antibodies are complex, existing techniques tend to be powerful at different levels of complexity, he explains. Mass spectrometry is particularly powerful for distinguishing molecular composition, while structural approaches such as X-ray crystallography and cryo-electron microscopy can provide high-resolution structural information.

The challenge is understanding the link between these things within a heterogeneous sample, he says.

To overcome this, Bleiholder and his team worked with Bruker Daltonics to develop Tandem-Trapped Ion Mobility Spectrometry (Tandem-TIMS). This combines tandem ion mobility spectrometry with tandem mass spectrometry to disentangle three overlapping layers of molecular complexity: molecular form, three-dimensional shape, and binding or assembly state, he says.

He explains that, if the proteins have different structures, they can be characterized with tandem ion mobility spectrometry, and then mass spectrometry can be used to look at their molecular forms and binding states.

Going forward, Bleiholder hopes the technique can be used for formulation development but also earlier, during drug discovery of new products, such as multi-specific antibodies, to determine which molecular states are important and how those change when a biologic engages its target. He also plans to look at automating the technique.

Bleiholder spoke about using Tandem-TIMS at the Bioprocessing Summit in Boston earlier this year.

The post New Spectrometry Technique Could Aid Formulation Development appeared first on GEN – Genetic Engineering and Biotechnology News.

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