The same thing would make a lot of sense here. Super-fast memory close, with overflow into classic DDR slots.
As a footnote, going parallel also helps. 8 sticks of RAM at 1/8 the bandwidth each is the same as one stick of RAM at 8x the bandwidth, if you don't multiplex onto the same traces.
Point of fact: GPUs don't even use all the PCI Express lanes they have available to them! Most GPUs (even top of the line ones like Nvidia's 4090) only use about 8 lanes of bandwidth. This is why some newer GPUs are being offered with M.2 slots so you can add an SSD (https://press.asus.com/news/asus-dual-geforce-rtx-4060-ti-ss... ).
The issue is that GPUs are massively parallel. A 4090 has 128 streaming multiprocessors, each executing 128 "threads" or "lanes" in parallel. If each "thread" works on a different part of memory that leaves you with 1kB of L1 cache per thread, and 4.5kB of L2 cache each. For each clock cycle you might be issuing thousands of request to your memory controller for cache misses and prefetching. That's why you want insanely fast RAM.
You can write CUDA code that directly accesses your host memory as a layer beyond that, but usually you want to transfer that data in bigger chunks. You probably could make a card that adds DDR4 slots as an additional level of hierarchy. It's the kind of weird stuff Intel might do (the Phi had some interesting memory layout ideas).