Pathogenic pathways in Alzheimer Disease – Lars Tjernberg's research group

Research focus

Pathologically, AD is characterized by amyloid plaques formed by the amyloid β-peptide (Aβ), intracellular tangles consisting of the tau protein, and loss of neurons and synapses. Several lines of evidence suggest that the polymerization of Aβ, eventually leading to the formation of plaques, is an early and critical step in the cascade of events leading to AD. Still, exactly how Aβ is generated from its precursor APP, how it is trafficked within the neuron and where the polymerization is initiated is not known.

By combining cutting edge technology such as super-resolution microscopy and genetic code expansion in neuronal cultures we are finding the answers to these crucial research questions. To increase our understanding of the effect of Aβ in vivo, we have undertaken proteomics approaches. To elucidate which pathogenic pathways that are affected early, we have used a novel knock-in mouse model that overexpresses the pathogenic 42 residues variant of Aβ (Aβ42). We have identified differently expressed proteins at different time points, and concluded that certain pathways are activated already at 3month of age in hippocampus and cortex. Interestingly, other pathways are activated as the mice ages.

To find specific pathways involved in hippocampal synapse loss, we are using laser microdissection of human brain autopsies and mass spectrometry, and have found a high number of proteins that are dysregulated in AD, some of which could potentially be targeted for pharmaceutical intervention. 

To successfully treat AD, it is seems necessary to start treatment at a pre-symptomatic stage. To this end we have used glycomics and found a set of glycans that discriminates between controls and pre-AD stages of disease. Based on these data we are now developing assays that hopefully will be of clinical use for pre-symptomatic detection of AD.

Publications

Selected publications

Staff and contact

Group leader

All members of the group

Lisha Wang research

Team members

Lisha Wang

Lisha Wang

Team leader
Banesh Sooram

Banesh Sooram

Postdoctoral studies
Jianing Liu

Jianing Liu

Postdoctoral studies

Yuxuan Zhu

Research Assistant

Research focus

Our research focuses on developing small molecules that modulate protein-protein interactions to advance new treatments for Alzheimer’s disease, with a current emphasis on promoting the clearance of pathological tau. Our multidisciplinary team combines expertise in computational and medicinal chemistry, cell and molecular biology, primary neuronal and animal models, behavioral neuroscience, pharmacokinetics, imaging, and bioinformatics. By integrating mechanistic studies, compound design and screening, and experimental evaluation in cellular and animal models, we aim to understand how pathological proteins are selectively degraded and translate this knowledge into targeted protein degraders for Alzheimer’s disease.

Projects

(1) Development of proteolysis-targeting chimeras (PROTACs)

We develop PROTACs that recruit E3 ubiquitin ligases to pathological tau and promote its selective degradation. By integrating computational predictions, compound synthesis, binding studies, and evaluation in cellular and animal models, we aim to develop brain-penetrant tau-targeting PROTACs as potential treatments for Alzheimer’s disease. 

PROTACs-mediated degradation of the target protein through the Ubiquitin Proteasome System (Created with BioRender)


(2) Development of specific hyperphosphorylated tau (pTau)-binding ligands

We develop brain-penetrant small-molecule ligands that selectively bind hyperphosphorylated tau (pTau) over unmodified tau. By integrating protein production, structural analysis, pharmacophore mapping, compound screening, binding-affinity assessment, and hit optimization, we identify and refine promising pTau binders. These ligands can serve as, e.g., essential building blocks for PROTACs that promote the selective degradation of early pathological tau in Alzheimer’s disease.

(3) Development of molecular glues

We develop molecular glues that stabilize or induce interactions between pTau and E3 ubiquitin ligases. Our research combines high-throughput screening cell- and bead-based platforms, structural analysis, structure-guided rational design, biophysical assays, and disease-relevant cellular and animal models to discover small molecules that prevent early tau pathology. 

(4) Exploration of tau-targeting E3 ligases

We explore new tau-targeting E3 ligases with brain-, neuron-, or disease-specific expression profiles. By combining proteomics, bioinformatics, and biochemical and cellular studies, we aim to identify tau-targeting E3 ligases, characterize their interactions with pathological tau, and determine how these processes are altered under disease conditions. This will uncover new, central nervous system‑relevant degradation E3s that can be pharmacologically recruited by next‑generation degraders, improving specificity and reducing the risk of systemic side effects.

Funding

  • Private initiative "Innovative ways to fight Alzheimer’s disease - Leif Lundblad Family and others"
  • Petrus och Augusta Hedlunds Stiftelse
  • StratNeuro Funding for postdoctoral researchers
  • Tore Nilsons Stiftelse För Medicinsk Forskning
  • Åhlén stiftelsen
  • Stiftelsen för Gamla Tjänarinnor
  • Gun & Bertil Stohnes Stiftelse
  • Grants from Karolinska Institutet

 

If you are interested in collaboration or are a Master's student seeking thesis opportunities in our lab, please feel free to contact us.