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As our knowledge of tumor biology grows, the importance of analyzing heterogeneous cells across the tumor microenvironment has also increased1,2. The ability to acquire single-cell RNA and the assay for transposase-accessible chromatin with sequencing (ATAC-sequencing) data from the same cell in a paired-cell fashion (multiome sequencing) provides a significant advance towards this end3,4. These experiments are expensive and time-consuming, however, and the quality and impact of the data acquired are highly dependent on the quality of the experimental conditions and materials. Standardized protocols for nuclei isolation have been published5,6. Fresh and heterogeneous tissues require protocol optimization since freshly isolated cells from solid tumor specimens are more fragile than those isolated from cell lines.
Another consideration is that for solid tumors, surgical specimens are often not available from the operating room until late in the day. As such, it is generally not feasible to proceed directly from sample acquisition to nuclei capture without a cryopreservation step. In our experience, freezing a single-cell suspension yields the highest-quality nuclei (rather than flash-frozen whole tissue or other modalities of preservation). This is particularly true for enzymatic tissue types with high RNase content such as the pancreas.
Tissue digestion conditions also need to be designed to maximize cell yield without sacrificing quality7. In the context of solid tumor types with dense desmoplastic matrices8, the extracellular matrix must be gently broken down for cell release. Additionally, because the cell types isolated are heterogeneous, conditions should be adjusted to support the total cell population. Human pancreatic cancer (pancreatic ductal adenocarcinoma) samples are used in the described protocol. Pancreatic cancer represents a highly desmoplastic tumor type, which portends relatively sticky tissue and cells. Moreover, as pancreatic tumor specimens available for research also tend to be relatively small, efforts are made to maximize the quantity of cells captured.
Isolation of nuclei requires the most optimization in terms of cell lysis conditions and timing, as well as reagent types and ratios. Handling the nuclei over the course of isolation also requires great care. In this article, we describe our experience optimizing nuclear isolation for the 10x Genomics multiome sequencing platform from solid tumor tissue (Figure 1). We provide recommendations for tissue digestion, cryopreservation of single-cell suspensions (if desired), and nuclear isolation.