Videos

Molecular Pharmacology, Voigt Group

First cellular model of atrial fibrillation in a dish
23.05.2024 Video

First cellular model of atrial fibrillation in a dish

Nanion Technologies

Recent breakthroughs at Niels Voigt Lab (University of Göttingen) have led to the development of novel 2D and 3D in vitro models that closely mimic human atrial fibrillation. These models utilize atrial cardiomyocytes derived from human induced pluripotent stem cells (iPSC-aCM) and atrial-engineered human myocardium (aEHM), exhibiting key AF characteristics. This advancement was achieved through an elegant technique of chronic electrical and optical tachypacing, using the ultrafast light-gated channelrhodopsin variant f-Chrimson. The transition to a more practical application of these findings was facilitated by the use of the high-throughput automated patch-clamp system SyncroPatch 384. This system allowed the authors to record action potentials as well as L-type calcium, sodium, and inward-rectifier potassium currents in iPSC-aCMs.

The Patch Clamp Technique – Video from the Exhibition „Herz & Hirn“, Forum Wissen Göttingen 2024.
29.04.2024 Video

The Patch Clamp Technique – Video from the Exhibition „Herz & Hirn“, Forum Wissen Göttingen 2024.

"Herzbeben - Wenn das Herz außer Takt gerät..."
22.01.2024 Video

"Herzbeben - Wenn das Herz außer Takt gerät..."

Prof. Dr. Niels Voigt (Öffentl. Ringvorlesung UniGö/AdWGoe WS 2023/24)

“Role of calcium signalling in rhythm disorders”
22.01.2024 Video

“Role of calcium signalling in rhythm disorders”

Niels Voigt at ESC Basic Science Summer School 2019

Niels Voigt - Enlightening mechanisms of cardiac arrhythmias using iPSC-derived cardiomyocytes
13.12.2023 Video

Niels Voigt - Enlightening mechanisms of cardiac arrhythmias using iPSC-derived cardiomyocytes

Atrial fibrillation (AF) is the most common clinically reported arrhythmia. It is associated with electrophysiological and structural alterations that promote the worsening of the disease. The limited longevity of human cardiac samples ex vivo has historically restricted mechanistic investigation into these remodeling processes and therefore hampers the development of new antiarrhythmic therapies. We aim to assess if classical AF-associated remodeling events can be elicited in atrial subtype-specific induced pluripotent stem cell derived cardiomyocytes (iPSC-CM) and atrial engineered human myocardium (EHM).

SyncroPatch 384: Data Analysis The Göttingen Method
22.08.2023 Video

SyncroPatch 384: Data Analysis The Göttingen Method

Isolation of High Quality Murine Atrial and Ventricular Myocytes for Simultaneous Measurements of Ca2+ Transients and L-Type Calcium Current
04.08.2023 Video

Isolation of High Quality Murine Atrial and Ventricular Myocytes for Simultaneous Measurements of Ca2+ Transients and L-Type Calcium Current

High-throughput recordings of cellular electrophysiology
22.07.2022 Video

High-throughput recordings of cellular electrophysiology

Prof. Dr. Niels Voigt and Dr. Thomas Mager introduce new MBExC technology platform SyncroPatch 384 (Nanion Technologies).

The new technology platform combines high-throughput recordings of cellular electrophysiology of isolated cardiomyocytes and neurons and their optical stimulation with light.

Single-Cell Optical Action Potential Measurement in Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes
20.12.2020 Video

Single-Cell Optical Action Potential Measurement in Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes

Autophagy and heart disease
12.06.2019 Video

Autophagy and heart disease

Prof. Dr. Niels Voigt interview Dr Sadoshima.

Folgen Sie uns