Free learning resources
Quickly learn how to integrate Schrödinger technology into your research. From overviews to deep dives, you can find information about applications, workflows, and analysis here.
Quickly learn how to integrate Schrödinger technology into your research. From overviews to deep dives, you can find information about applications, workflows, and analysis here.
A free video series introducing the basics of using Maestro Bioluminate.
Self-guided step-by-step introductions to various workflows with example files for getting comfortable with Schrödinger tools.
Short video overviews of specific introductory and scientific topics, including summaries of new release features.
A one-page PDF that visually describes the panel or workflow.
Learn how to prepare structures for docking and create a protein mutation by modeling an olfactory receptor.
A free video series introducing the basics of using Maestro Bioluminate.
Rapidly prepare high-quality small molecule ligand structures for structure-based virtual screening and other computational workflows.
Interactively design a ligand in the context of a protein or DNA/RNA receptor to optimize its binding and properties.
Schrödinger KNIME extensions of more than 160 nodes and provides access to a wealth of ligand- and structure-based tools from the Schrödinger Suite.
Calculate VCD, ECD, or NMR spectra for a set of structures, with optional MM conformational search and QM refinement.
Customize torsions not explicitly included in the OPLS4 or OPLS5 force field by fitting to quantum-mechanical calculations for a set of molecules.
Computational prediction of protein-ligand binding using physics-based free energy perturbation technology at an accuracy matching experimental methods.
Level up your skill set with hands-on, online molecular modeling courses. These self-paced courses cover a range of scientific topics and include access to Schrödinger software and support.
Connect your students to industry-leading molecular modeling software through a web-based platform. Incorporate molecular modeling in the classroom.