Related Experiment Video
Updated: Jul 16, 2025

In Vitro Aggregation Assays Using Hyperphosphorylated Tau Protein
Published on: January 2, 2015
Chemical Synthesis of Microtubule-Associated Protein Tau
Wyatt C Powell1, Ruiheng Jing1, Maciej A Walczak1
1Department of Chemistry, University of Colorado, Boulder, Colorado 80309, United States.
Abstract:
Deposits of the microtubule-associated protein Tau (MAPT) serve as a hallmark of neurodegenerative diseases known as tauopathies. Numerous studies have demonstrated that in diseases such as Alzheimer's disease (AD), Tau undergoes extensive remodeling. The attachment of post-translational modifications distributed throughout the entire sequence of the protein correlates with clinical presentation. A systematic examination of these protein alterations can shed light on their roles in both healthy and diseased states. However, the ability to access these modifications in the entire protein chain is limited as Tau can only be produced recombinantly or through semisynthesis. In this article, we describe the first chemical synthesis of the longest 2N4R isoform of Tau, consisting of 441 amino acids. The 2N4R Tau was divided into 3 major segments and a total of 11 fragments, all of which were prepared via solid-phase peptide synthesis. The successful chemical strategy has relied on the strategic use of two cysteine sites (C291 and C322) for the native chemical ligations (NCLs). This was combined with modern preparative protein chemistries, such as mercaptothreonine ligation (T205), diselenide-selenoester ligation (D358), and mutations of mercaptoamino acids into native residues via homogeneous radical desulfurization (A40, A77, A119, A157, A246, and A390). The successful completion of the synthesis has established a robust and scalable route to the native protein in multimilligram quantities and high purity. In broader terms, the presented strategy can be applied to the preparation of other shorter isoforms of Tau as well as to introduce all post-translational modifications that are characteristic of tauopathies such as AD.
Insights
Scientists chemically synthesized the longest Tau protein isoform (441 amino acids), enabling the study of neurodegenerative diseases like Alzheimer's disease and tauopathies.
Area of Science:
- Biochemistry
- Neuroscience
- Chemical Biology
Background:
- Microtubule-associated protein Tau (MAPT) deposits are hallmarks of tauopathies, including Alzheimer's disease (AD).
- Tau protein undergoes extensive remodeling and post-translational modifications in disease states, influencing clinical presentation.
- Studying these modifications is crucial but limited by current production methods for full-length Tau.
Purpose of the Study:
- To achieve the first chemical synthesis of the longest Tau isoform (2N4R, 441 amino acids).
- To establish a robust and scalable method for producing native Tau protein.
- To enable comprehensive analysis of Tau post-translational modifications in health and disease.
Main Methods:
- Solid-phase peptide synthesis of 11 fragments comprising the 441-amino acid 2N4R Tau protein.
- Utilized native chemical ligations (NCLs) at cysteine sites (C291, C322).
- Employed advanced protein chemistries including mercaptothreonine ligation, diselenide-selenoester ligation, and radical desulfurization.
Main Results:
- Successfully synthesized the full-length 441-amino acid 2N4R Tau protein.
- Established a scalable route yielding multimilligram quantities of high-purity native Tau.
- Demonstrated the feasibility of chemical synthesis for studying Tau modifications.
Conclusions:
- The chemical synthesis strategy provides a scalable route to native Tau protein.
- This method facilitates the study of Tau post-translational modifications in tauopathies.
- The approach can be extended to other Tau isoforms and disease-specific modifications.
Related Concept Videos
Assembly of Complex Microtubule Structures
Drugs that Stabilize Microtubules
Assembly of Cytoskeletal Filaments
Microtubule Associated Proteins (MAPs)
Microtubule Formation
Microtubule Instability

