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The formation of amyloid fibers due to protein misfolding has long been known to play a role in pathologic conditions such as Alzheimer's disease, Parkinson's disease, and Huntington's disease1. More recently, the formation of amyloid or amyloid-like fibers has been shown to be a part of signaling pathways in humans, including during anti-viral innate immune response2 and necroptosis3,4, and in lower organisms such as yeast5,6. Therefore, the ability to detect these fibers in the lab is important. Currently, there are three main ways to detect amyloid and amyloid-like fibers: the use of dyes, EM, and SDD-AGE.
The use of dyes, such as Congo Red or Thioflavin T, offers the advantage of being rapid and easily detectable using either microscopy or spectroscopy7. However, detection by microscopy, in the case of Congo Red, provides no specificity about which proteins comprise the fibers, or the size of the fibers. Similarly, the use of spectroscopy to detect Congo Red or Thioflavin T binding to protein complexes provides only a positive or negative result.
EM provides conclusive evidence of the presence of fibers and also quantitative information about the fiber length and diameter8. However, this method requires very stringent purification. Additionally, EM is a specialized technique which uses expensive equipment.
SDD-AGE has been used to detect SDS-resistant mega Dalton protein complexes including amyloid or amyloid-like fibers. It offers many advantages. First, it does not require the purification of the fibers and is easy to peform9. Second, it provides qualitative information about the size of the fibers, including relative size and amount of fiber heterogenicity. Lastly, because Western blotting can be performed after electrophoresis, it is easy to detect the presence of any protein for which there is an antibody, although it should be noted that because SDD-AGE is semi-denaturing, some epitopes may remain concealed which complicates detection by antibody.
Recently, receptor interacting protein kinase 1 (RIPK1) and 3 (RIPK3) have been reported to form amyloid fibers to serve as signaling platforms during necroptosis, a programmed form of necrosis3. While studying these fibers, our lab showed that another necroptosis-associated protein, mixed lineage kinase domain-like (MLKL), also formed amyloid-like fibers4. However, upon examination with SDD-AGE, the size of the MLKL fibers appeared distinct from the RIPK1 and RIPK3 fibers, which appeared identical to each other (Figure 1). This was unexpected because it is well-known that MLKL binds to RIPK1/RIPK3 to form the necroptosis signaling complex called the necrosome10.
There are at least two explanations. First, two totally distinct amyloid-like fibers may form during necroptosis, one containing RIPK1/RIPK3 and the other containing MLKL. Second, only one type of amyloid-like fibers containing RIPK1/RIPK3/MLKL may be formed during necroptosis, but the association of MLKL with the other proteins is weak enough that it dissociates during SDD-AGE.
To address this, we propose performing a two-dimensional (2D) SDD-AGE. SDD-AGE-stable amyloid or amyloid-like fibers will have the same migration pattern during the first and second dimension electrophoresis. This will be detectable after transferring the proteins to a membrane and carrying out a Western blot. Stable fibers will exhibit a sharp diagonal pattern. Any deviation from this would suggest that the fibers undergo changes due to the SDS-electrophoresis.