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Initial approaches used to determine if a target protein is modified by a PTM can be performed using the target protein specific antibody for IP, followed by western blot with a PTM antibody (e.g., anti-acetyl lysine), or by using a PTM antibody for IP, followed by western blot with the target protein specific antibody30,31,33. While both approaches theoretically work, utilizing a target-protein-specific antibody has more potential pitfalls, such as the antibody may not be IP compatible, or large PTM modifications may block the antibody recognition site on the target protein34,35. The advantage of the PTM affinity beads is that the antibody or binding domains specifically recognize the PTM of interest; thus, modifications to the target protein should not alter recognition by the affinity beads. As an example, PD-L1 Ub was identified with the technique described here, and both endogenous mono- and poly-Ub was observed (Figure 4). A recent publication by Lim et al. utilized in vitro Ub techniques to investigate PD-L1 Ub, and the result was very similar to the results shown in Figure 436. Interestingly, they also performed IP with a PD-L1 antibody to enrich PD-L1 from cell lysate, where Ub was overexpressed and MG-132 was added to enhance the signal. The Ub pattern was not robust and very distinct from the in vitro Ub pattern. Investigation of endogenous PD-L1 Ub in cell culture models was not performed in the Lim et al. report to clarify the difference between their cell culture and in vitro data.
Investigating whether a protein is modified by a PTM can be challenging, due to its low abundance and transient nature37,38, and often requires enrichment through IP. Effective IP of PTMs requires optimization of several key steps and reagents, such as lysis buffers and affinity reagents. When investigating multiple PTMs of a target protein, the required optimization likely increases. Utilizing the blastR lysis system is a critical step in this protocol, as it maintains robust IP capability, while enabling PTM detection of the pY, SUMO 2/3, Ub, and Ac PTMs in a single system. This technique optimizes the time and resources required to determine if a specific target protein is modified by these four PTMs, and potentially provides a better picture of PTM crosstalk relative to comparing PTM results performed using multiple lysis systems. Investigation of the blastR lysis system's compatibility with alternative PTMs, like glycosylation, was performed; however, it has not been examined exhaustively for all types of PTMs.
Copious genomic DNA can interfere with protein measurements using either colorimetric or nanodrop methods, affect the migration of proteins in an SDS acrylamide gel, and prevent protein and affinity matrix interaction during IP assays. The method described here utilizes a specialized filter to effectively remove genomic DNA contamination, which is another critical step of this protocol. To highlight this point, viscosity tests were performed before and after blastR filter treatment, and the results showed a reduction from a high viscosity to the viscosity of water (data not shown). This change in viscosity was supported by the results in Figure 3, showing nearly all the genomic DNA had been removed. Importantly, DNA is not sheared with this method, as any sheared DNA will not be captured by the filter (data not shown). This tool is superior to conventional methods, like sonication or syringe-DNA-shearing, because it requires no specialized equipment, is highly reproducible, and removes the DNA instead of shearing it. Furthermore, it will not degrade protein in the lysate, which can occur using conventional methods29. Utilizing the filter takes 5 - 30 seconds per sample compared to alternative methods where effective breakdown of DNA may take several minutes (i.e., syringe shearing) and can result in sample heterogeneity as DNA contaminants remain in the lysate. Extensive analysis of the lysate pre- and post- blastR filtering was performed, and no observable difference in the protein profile was observed by Coomassie, target-specific western, or total and target-specific PTM analyses; thus, the integrity of the protein profile may not have been affected by filtering out the genomic DNA. Ultimately, this filter system is beneficial for any western or IP application where genomic DNA is present and may affect interpretation of the protein analysis.
It is important to note that there is potential for false negative detection utilizing this technique, which may be due in part to affinity bead saturation, binding site interference, or PTM masking. For instance, a particular target protein may be modified by Ac at very low levels; thus, it may not be isolated by pan-acetyl lysine affinity beads that have been saturated by more abundant Ac-modified target proteins. Ongoing studies are being performed to assess the detection limits of the affinity reagents utilized in this protocol, but a recent publication suggests a very robust detection limit. The data showed that this technique could identify as few as 17 acetylated target protein molecules per cell31. Still, specific circumstances such as cell type specificity, transient PTMs in response to specific stimuli, or masking of PTMs due to protein interaction may all result in false negative results. These are potential pitfalls of this technique, as well as most PTM IP methods. Thus, it is recommended to confirm results using multiple approaches.
Modifications like glycosylation and phosphorylation have been shown to compete for similar amino acids39,40, and other PTMs like ubiquitination and phosphorylation have been shown to work sequentially to regulate a protein's function17,41. Recent work on the neuropathological protein Tau highlighted the importance of PTM crosstalk, where Tau hyper-phosphorylation and Tau SUMOylation enhanced each other42. Moreover, this group showed that SUMOylation of Tau prevented poly-Ub and subsequent Tau degradation, possibly leading to aggregation. This is just one of many examples of regulatory PTM crosstalk, and the utility of this technique will help to illuminate the importance of PTMs and their crosstalk in regulating key proteins in health and disease.