Beyond DNA-targeting in Cancer Chemotherapy. Emerging Frontiers - A Review

Simon N Mbugua1, Lydia W Njenga1, Ruth A Odhiambo1

  • 1Department of Chemistry, University of Nairobi, P.O. Box 30197-00100, Nairobi, Kenya.

Insights

New cancer therapies are moving beyond DNA targeting to focus on unique cancer cell mechanisms, aiming to reduce side effects. This research explores innovative approaches like nanoparticles and exosomes for more effective cancer treatment.

Area of Science:

  • Oncology
  • Nanomedicine
  • Biotechnology

Background:

  • Current chemotherapy targets DNA, causing severe side effects by affecting healthy rapidly dividing cells.
  • Cancers develop resistance to therapies, highlighting an unmet need for innovative treatments.
  • Traditional chemotherapy, like cisplatin, often involves metal-based drugs with significant toxicity.

Purpose of the Study:

  • To review emerging anti-cancer strategies that target cancer-specific mechanisms.
  • To critically evaluate novel therapeutic approaches beyond DNA targeting.
  • To compare the advantages and disadvantages of these new frontiers in cancer research.

Main Methods:

  • Review of emergent frontiers including nanoparticles, quantum dots, metal complexes, tumor ablation, and hyperthermia.
  • Analysis of advanced imaging and diagnostic techniques like pathomics and radiomics.
  • Exploration of novel delivery systems such as exosomes and Superparamagnetic Iron oxide Nanostructures.

Main Results:

  • Identified a trend diverging from metal-centric chemotherapy towards targeted signaling pathways.
  • Highlighted the potential of nanotechnology and advanced physical methods for cancer treatment.
  • Discussed the limitations and benefits of various innovative therapeutic modalities.

Conclusions:

  • Novel agents targeting cancer-specific signaling pathways offer a promising alternative to traditional chemotherapy.
  • Emerging frontiers like nanomedicine and advanced physical therapies present new avenues for cancer management.
  • Continued research into cancer pathogenesis is crucial for developing effective preclinical tests and innovative drugs.

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