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Path Category
Guided learning journeys that build knowledge step by step.
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This learning path equips pharmaceutical science students with the knowledge to design, execute, and interpret cell-based assays for drug screening and development. It covers essential cell biology and pharmacology foundations, progresses through assay design and key assay types (cytotoxicity, efficacy, high-throughput), and concludes with data analysis and translational considerations.
This advanced learning path connects fundamental concepts of cell biology—cell cycle control, signaling pathways, and apoptosis—to the hallmarks of cancer, including sustained proliferation, evasion of growth suppressors, resistance to cell death, metastasis, and angiogenesis. It is designed for pre-med and biomedical graduate students to build a mechanistic understanding of cancer development and progression, preparing them for clinical and research careers.
This advanced graduate-level path explores the molecular and cellular principles governing stem cell self-renewal and differentiation. It covers core concepts of pluripotency, key transcription factor networks, signaling pathways, and the stem cell niche, with a focus on their relevance to regenerative medicine.
This advanced graduate-level path explores the molecular mechanisms that establish and maintain cellular asymmetry, focusing on epithelial polarity complexes (Par, Crumbs, Scribble), cell migration, and the interplay between polarity and cytoskeletal dynamics. Learners will progress from fundamental cell biology to the sophisticated regulatory networks that govern polarized cell behavior.
This graduate-level learning path explores the extracellular matrix (ECM), its major components, and the molecular mechanisms by which cells interact with and respond to their microenvironment. It covers the structure and function of collagen, fibronectin, and laminin, the role of integrins and focal adhesions, and the principles of mechanotransduction. Designed for cell and tissue engineering students, the path integrates basic cell biology with advanced concepts in matrix biology and signaling.
This advanced graduate-level path systematically explores the PI3K/AKT/mTOR signaling network, from receptor activation to downstream effects on cell growth, survival, and metabolism. It emphasizes the molecular mechanisms, regulatory feedback loops, and pathophysiological relevance, particularly in cancer.
This path guides biomedical researchers from foundational cell signaling concepts through the molecular components and regulatory mechanisms of the MAPK/ERK pathway. It covers growth factor receptors, Ras, Raf, MEK, ERK, and downstream transcriptional responses, emphasizing pathway regulation and cross-talk. The path is designed for systematic, graduate-level learning.
This graduate-level path equips bioscience students with the skills to design and execute advanced microscopy experiments and apply computational methods for quantitative cell analysis. It covers from basic microscopy principles through confocal, super-resolution, and live-cell imaging, followed by image segmentation and tracking.
This learning path covers the fundamental principles of flow cytometry, including fluidics, optics, electronics, and fluorescence, and progresses to practical applications such as multicolor panel design, data analysis, and cell sorting (FACS). Designed for students in cell and immunology labs, it builds on basic cell biology and immunology knowledge to develop career-relevant skills in analytical methods.
This advanced graduate-level path provides a systematic exploration of the molecular mechanisms governing intrinsic and extrinsic apoptosis, their regulation, and their physiological significance. Learners will build from foundational cell biology and signaling concepts through detailed molecular pathways, culminating in an integrated understanding of apoptosis in homeostasis and disease.