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Published on: December 23, 2022
Evaluation of exogenous therapeutic protein activity under confinement and crowding effects
Jie Dai1, Zhiyi Peng1, Shuwei Shen1
1School of Pharmaceutical Sciences, Nanjing Tech University, 30th Puzhu South Road, Nanjing 211816, China. jialiu@njtech.edu.cn.
Abstract:
Dysfunction of intracellular proteins is frequently associated with various diseases, such as cancer. The exogenous proteins in cells are usually assembled with specific configurations due to physiological confinement/crowding to exhibit novel features in the protein structure, folding or conformational stability, distinguished with their behaviors in buffer solutions. Here, we synthesized exogenous proteins under confined/crowded conditions, to explore protein activity within cells. The findings suggested that the confinement and crowding effects on protein activity are heterogeneous; they showed an inhibitory effect on HRP by decreasing Km from ∼9.5- and ∼21.7-fold and Vmax from ∼6.8- and ∼20.2-fold lower than that of dilute solutions. Interestingly, the effects on Cyt C seem to be more complicated, and crowding exerts a positive effect by increasing Km ∼ 3.6-fold and Vmax ∼ 1.5-fold higher than that of dilute solutions; however, confinement exhibits a negative effect by decreasing Km ∼2.0 and Vmax ∼8.3 times. Additionally, in contrast to traditional nanoparticle-based confinement models, we synthesized a biodegradable nanoparticle to mimic the confined space, and the biggest advantage of this novel model is that the particles can be degraded and thus it can provide more intuitive observations of the properties of the target proteins under confinement and after release. Furthermore, we also evaluated protein activity in different cellular environments, indicating that the exogenous protein activity was closely related to the crowdedness of cellular environments, and the inhibition of protein activity in MDA-MB-231 cancer cells was more obvious than in HEK293 normal cells. Finally, SAXS analysis revealed the correlation between the protein conformation and the different environments. Our work will provide a unique method for precisely assessing whether the target cellular environments are native matrix in which specific exogenous protein drugs are delivered to function or whether they display a therapeutic role, which is of great significance for screening and development of new drugs.
Insights
Cellular confinement and crowding alter exogenous protein activity, impacting drug efficacy. This study developed a biodegradable nanoparticle model to investigate these effects in various cell types, aiding new drug development.
Area of Science:
- Biochemistry
- Cell Biology
- Biotechnology
Background:
- Intracellular protein dysfunction is linked to diseases like cancer.
- Exogenous proteins exhibit altered structures and functions within cellular environments due to confinement and crowding.
- Understanding these effects is crucial for developing effective protein-based therapeutics.
Purpose of the Study:
- To investigate the impact of cellular confinement and crowding on exogenous protein activity.
- To develop and utilize a novel biodegradable nanoparticle model for mimicking cellular environments.
- To assess protein activity in cancer cells versus normal cells and correlate it with cellular crowdedness.
Main Methods:
- Synthesized exogenous proteins under confined and crowded conditions.
- Employed a novel biodegradable nanoparticle to simulate cellular confinement.
- Evaluated protein activity (HRP, Cyt C) in different cellular environments (MDA-MB-231, HEK293).
- Utilized Small-Angle X-ray Scattering (SAXS) for conformational analysis.
Main Results:
- Confinement and crowding showed heterogeneous effects on protein activity; HRP activity was inhibited, while Cyt C activity showed complex responses.
- Biodegradable nanoparticles provided a novel, advantageous model for studying protein behavior under confinement.
- Exogenous protein activity correlated with cellular crowdedness, with greater inhibition observed in cancer cells.
- SAXS analysis revealed a link between protein conformation and cellular environment.
Conclusions:
- Cellular confinement and crowding significantly modulate exogenous protein activity in a heterogeneous manner.
- The developed biodegradable nanoparticle model offers a valuable tool for studying protein behavior in physiologically relevant conditions.
- Findings have critical implications for assessing the therapeutic potential and optimizing the delivery of exogenous protein drugs.
- This research provides a new method for evaluating cellular environments for targeted protein drug delivery and therapeutic efficacy.

