Supplementary Figure S1: GVHD survival of lethally-irradiated (day 0, 1000cGy split dose) B6.WT, B6.ASC-/- or B6.NLRP3-/- recipients transplanted with BALB/c BM (5x106) and T cells (5x106). The non-GVHD control group received TCD BM cells (5x106) only. Results combined from 2 independent experiments (n = 20 per T cell-replete group, n = 8 for TCD BM group). ****P < 0.0001; B6.NLRP3-/- vs. B6.WT. Results are presented as means {plus minus} SEM.
Supplementary Table S1 (related to Fig. 4A): (A) Ingenuity Pathway Analysis derived from the uncorrected dataset displaying top canonical signaling pathways involving differentially regulated genes in recipients as described in Fig.4A. (B) 10 selected immunologically relevant genes identified as differentially regulated in mice transplanted with B6.WT or B6.ASC-/- grafts.
Some hematological malignancies such as multiple myeloma are inherently resistant to immune-mediated antitumor responses, the cause of which remains unknown. Allogeneic bone marrow transplantation (alloBMT) is the only curative immunotherapy for hematological malignancies due to profound graft-versus-tumor (GVT) effects, but relapse remains the major cause of death. We developed murine models of alloBMT where the hematological malignancy is either sensitive [acute myeloid leukemia (AML)] or resistant (myeloma) to GVT effects. We found that CD8 + T cell exhaustion in bone marrow was primarily alloantigen-driven, with expression of inhibitory ligands present on myeloma but not AML. Because of this tumor-independent exhaustion signature, immune checkpoint inhibition (ICI) in myeloma exacerbated graft-versus-host disease (GVHD) without promoting GVT effects. Administration of post-transplant cyclophosphamide (PT-Cy) depleted donor T cells with an exhausted phenotype and spared T cells displaying a stem-like memory phenotype with chromatin accessibility present in cytokine signaling genes, including the interleukin-18 (IL-18) receptor. Whereas ICI with anti–PD-1 or anti–TIM-3 remained ineffective after PT-Cy, administration of a decoy-resistant IL-18 (DR-18) strongly enhanced GVT effects in both myeloma and leukemia models, without exacerbation of GVHD. We thus defined mechanisms of resistance to T cell–mediated antitumor effects after alloBMT and described an immunotherapy approach targeting stem-like memory T cells to enhance antitumor immunity.
The classical paradigm of host-tumor interaction, i.e. elimination, equilibrium, and escape (EEE), is reflected in the clinical behavior of myeloma which progresses from the premalignant condition, Monoclonal Gammopathy of Unknown Significance (MGUS). Despite the role of other immune cells, CD4+ regulatory T cells (Treg) and cytotoxic CD8+ T cells have emerged as the dominant effectors of host control of the myeloma clone. Progression from MGUS to myeloma is associated with alterations in Tregs and terminal effector CD8+ T cells (TTE). These changes involve CD39 and CD69 expression, affecting the adenosine pathway and residency in the bone marrow (BM) microenvironment, together with oligoclonal expansion within CD8+ TTE cells. In this mini-review article, in the context of earlier data, we summarize our recent understanding of Treg involvement in the adenosine pathway, the significance of oligoclonal expansion within CD8+ TTE cells and BM-residency of CD8+ TTE cells in MGUS and newly diagnosed multiple myeloma patients.
Allogeneic stem cell transplantation (alloSCT) and graft-versus-host disease (GVHD) are characterized by systemic interleukin 6 (IL-6) dysregulation, which plays a significant role in shaping donor immune responses and T cell polarization. GVHD is a T cell-mediated disease and the severity and tissue distribution is heavily influenced by T cell-derived cytokines, therefore it is critical to understand the factors that drive T cell polarization in this context to inform therapeutic strategies. IL-6 has a unique receptor system composed of IL-6Ra and the signal transducing molecule gp130, in which signaling occurs via multiple pathways either directly (classical), indirectly via a soluble IL-6 receptor (trans), or presented via antigen presenting cells (cluster). We examined the influence of IL-6 signaling modalities on T cell polarization following allotransplantation, where we found specific targeting of these pathways modulates GVHD outcomes. Using donor grafts composed of IL-6Ra deficient T cells resulted in a profound loss of pathogenic Th17/Th22 differentiation and increased GVHD survival, demonstrating these populations are highly dependent upon classical IL-6 signaling post-transplant. Whilst targeting cluster signaling through IL-6Ra deficient DC had no effect on T cell cytokine responses, trans-signaling inhibition via soluble gp130-Fc resulted in severe skin GVHD. This effect was due to significant expansion of pathogenic donor Th22 and was prevented by donor IL-22 deficiency. These data demonstrate an important role for IL-6 trans signaling in regulating pathogenic T cell polarization pathways following allotransplantation and support IL-6 classical signaling as an important target for GVHD prevention.
CD8+CD57+ terminal effector T (TTE) cells are a component of marrow-infiltrating lymphocytes and may contribute to the altered immune responses in multiple myeloma (MM) patients. We analyzed TTE cells in the bone marrow (BM) and peripheral blood (PB) of age-matched controls and patients with monoclonal gammopathy of undetermined significance (MGUS), smoldering MM (SMM), and newly diagnosed (ND) MM using flow cytometry, mass cytometry, and FlowSOM clustering. TTE cells are heterogeneous in all subjects, with BM containing both CD69- and CD69+ subsets, while only CD69- cells are found in PB. Within the BM-TTE compartment, CD69- and CD69+ cells are found in comparable proportions in controls, while CD69- cells are dominant in MGUS and SMM and predominantly either CD69- or CD69+ cells in NDMM. A positive relationship between CD69+TTE and CD69-TTE cells is observed in the BM of controls, lost in MGUS, and converted to an inverse relationship in NDMM. CD69-TTE cells include multiple oligoclonal expansions of T-cell receptor/Vβ families shared between BM and PB of NDMM. Oligoclonal expanded CD69-TTE cells from the PB include myeloma-reactive cells capable of killing autologous CD38hi plasma cells in vitro, involving degranulation and high expression of perforin and granzyme. In contrast to CD69-TTE cells, oligoclonal expansions are not evident within CD69+TTE cells, which possess low perforin and granzyme expression and high inhibitory checkpoint expression and resemble T resident memory cells. Both CD69-TTE and CD69+TTE cells from the BM of NDMM produce large amounts of the inflammatory cytokines interferon-γ and tumor necrosis factor α. The balance between CD69- and CD69+ cells within the BM-TTE compartment may regulate immune responses in NDMM and contribute to the clinical heterogeneity of the disease.
AbstractThe adaptor protein ASC (apoptosis-associated speck-like protein containing a CARD) is known to facilitate caspase-1 activation, which is essential for innate host immunity via the formation of the inflammasome complex, a multiprotein structure responsible for processing IL1β and IL18 into their active moieties. Here, we demonstrated that ASC-deficient CD8+ T cells failed to induce severe graft-versus-host disease (GVHD) and had impaired capacity for graft rejection and graft-versus-leukemia (GVL) activity. These effects were inflammasome independent because GVHD lethality was not altered in recipients of caspase-1/11–deficient T cells. We also demonstrated that ASC deficiency resulted in a decrease in cytolytic function, with a reduction in granzyme B secretion and CD107a expression by CD8+ T cells. Altogether, our findings highlight that ASC represents an attractive therapeutic target for improving outcomes of clinical transplantation.
Allogeneic stem cell transplantation (alloSCT) is a highly effective, curative therapy for leukemia yet does not provide a survival benefit above autologous SCT in patients with multiple myeloma (MM). To explore this, we developed preclinical models of SCT using C57Bl/6 recipient mice and either C57Bl/6 (ASCT) or C3H.SW (alloSCT) donor grafts. Importantly, these models recapitulated the clinical setting whereby alloSCT provided superior outcomes, compared to ASCT, in recipients bearing MLL-AF9-driven acute myeloid leukemia (AML) but not in those bearing Vk*MYC-MM. Interestingly, we found that MM-specific, T cell-mediated immunity was generated after ASCT, which failed due to MM-induced T cell exhaustion. MM relapse after ASCT could be prevented by TIGIT or PD-1 targeted immune checkpoint inhibition or via depletion of suppressive CSF1-R+ myeloid cells. Conversely, after alloSCT, T cell exhaustion was driven principally by alloantigen and CD8 T cells expressed high levels of PD-1, TIGIT and TIM-3. Furthermore, Vk*MYC myeloma exploited this alloantigen-driven T cell exhaustion via expression of high levels of PD-L1 and CD155 (the cognate ligands for PD-1 and TIGIT), which were expressed minimally on MLL-AF9 AML. To exploit alloSCT in MM, we used post-transplant cyclophosphamide (PT-Cy) to delete high affinity alloreactive T cells that generate the exhausted donor T cell pool. Subsequent administration of CD137 agonists enhanced T cell activation and cytolytic activity within bone marrow, without exacerbating GVHD. Thus, PT-Cy provides a platform for optimizing immunotherapy after alloSCT.
Immunotherapy holds promise for patients with multiple myeloma (MM), but little is known about how MM-induced immunosuppression influences response to therapy. Here, we investigated the impact of disease progression on immunotherapy efficacy in the Vk*MYC mouse model. Treatment with agonistic anti-CD137 (4-1BB) mAbs efficiently protected mice when administered early but failed to contain MM growth when delayed more than 3 weeks after Vk*MYC tumor cell challenge. The quality of the CD8(+) T cell response to CD137 stimulation was not altered by the presence of MM, but CD8(+) T cell numbers were profoundly reduced at the time of treatment. Our data suggest that an insufficient ratio of CD8(+) T cells to MM cells (CD8/MM ratio) accounts for the loss of anti-CD137 mAb efficacy. We established serum M-protein levels prior to therapy as a predictive factor of response. Moreover, we developed an in silico model to capture the dynamic interactions between CD8(+) T cells and MM cells. Finally, we explored two methods to improve the CD8/MM ratio: anti-CD137 mAb immunotherapy combined with Treg depletion or administered after chemotherapy treatment with cyclophosphamide or melphalan efficiently reduced MM burden and prolonged survival. Together, our data indicate that consolidation treatment with anti-CD137 mAbs might prevent MM relapse.
Multiple Myeloma (MM) is preceded by the clinically stable condition monoclonal gammopathy of undetermined significance (MGUS). Critical immune events that discriminate MGUS from newly diagnosed MM (ND)MM patients remain unknown, but may involve changes in the regulatory T cell (Treg) compartment that favor myeloma growth. To address this possibility, we used mass cytometry and the unsupervised clustering algorithm Flow self-organizing map (FlowSOM) to interrogate the distribution of multiple subsets within CD25+CD127low/negTreg in matched bone marrow (BM) and peripheral blood (PB) of MGUS and NDMM patients. Both mass cytometry and flow cytometry confirmed a trend toward prevalence of CD39-Treg within the Treg compartment in BM and PB of NDMM patients compared to CD39-Treg in MGUS patients. FlowSOM clustering displayed a phenotypic organization of Treg into 25 metaclusters that confirmed Treg heterogeneity. It identified two subsets which emerged within CD39-Treg of NDMM patients that were negligible or absent in CD39-Treg of MGUS patients. One subset was found in both BM and PB which phenotypically resembled activated Treg based on CD45RO, CD49d, and CD62L expression; another subset resembled BM-resident Treg based on its tissue-resident CD69+CD62L-CD49d- phenotype and restricted location within the BM. Both subsets co-expressed PD-1 and TIGIT, but PD-1 was expressed at higher levels on BM-resident Treg than on activated Treg. Within BM, both subsets had limited Perforin and Granzyme B production, whilst activated Treg in PB acquired high Perforin and Granzyme B production. In conclusion, the use of mass cytometry and FlowSOM clustering discovered two discrete subsets of CD39-Treg which are discordant in MGUS and NDMM patients and may be permissive of myeloma growth which warrants further study. Understanding the regulatory properties of these subsets may also advance MGUS and MM diagnosis, prognosis, and therapeutic implications for MM patients.
Graft-versus-host disease (GVHD) after allogeneic stem cell transplantation (alloSCT) is characterized by interleukin-6 (IL-6) dysregulation. IL-6 can mediate effects via various pathways, including classical, trans, and cluster signaling. Given the recent availability of agents that differentially inhibit these discrete signaling cascades, understanding the source and signaling and cellular targets of this cytokine is paramount to inform the design of clinical studies. Here we demonstrate that IL-6 secretion from recipient dendritic cells (DCs) initiates the systemic dysregulation of this cytokine. Inhibition of DC-driven classical signaling after targeted IL-6 receptor (IL-6R) deletion in T cells eliminated pathogenic donor Th17/Th22 cell differentiation and resulted in long-term survival. After engraftment, donor DCs assume the same role, maintaining classical IL-6 signaling-dependent GVHD responses. Surprisingly, cluster signaling was not active after transplantation, whereas inhibition of trans signaling with soluble gp130Fc promoted severe, chronic cutaneous GVHD. The latter was a result of exaggerated polyfunctional Th22-cell expansion that was reversed by IL-22 deletion or IL-6R inhibition. Importantly, inhibition of IL-6 classical signaling did not impair the graft-versus-leukemia effect. Together, these data highlight IL-6 classical signaling and downstream Th17/Th22 differentiation as important therapeutic targets after alloSCT.
Multiple Myeloma (MM) is preceded by the pre-malignant, clonal plasma cell disorder monoclonal gammopathy of undetermined significance (MGUS). Altered immune surveillance during malignant transformation from MGUS to myeloma may involve changes in the regulatory T cell (Treg) compartment which are permissive to myeloma immune escape. To address this hypothesis, we used mass cytometry and unsupervised clustering algorithm Flow Self-organizing Map (FlowSOM) to interrogate at high resolution the heterogeneity within the Treg (CD25+CD27low/neg cells) compartment, in matched bone marrow (BM) and peripheral blood (PB) of MGUS and newly diagnosed NDMM patients. Both mass cytometry and flow cytometry confirmed a trend toward prevalence of CD39-Treg within the Treg compartment in BM and PB of NDMM patients compared to CD39-Treg in MGUS patients. FlowSOM clustering which displayed Treg in 25 metaclusters suggested Treg heterogeneity in both MGUS and NDMM patients, and discovered two subsets which emerged within CD39-Treg of NDMM patients but were negligible or absent in CD39-Treg of MGUS patients. One subset resembled activated Treg based on CD45RO, CD49d and CD62L expression and was found in both BM and PB; another subset resembled BM-resident Treg based on its tissue-resident CD69+CD62L-CD49d- phenotype and restricted location within the BM. Both subsets co-expressed PD-1 and TIGIT, but PD-1 was expressed at higher levels on BM-resident Treg then on activated Treg. Within BM, both subsets had limited Perforin and Granzyme B production, whilst activated Treg in PB acquired high Perforin and Granzyme B production. In conclusion, the use of mass cytometry revealed two discrete subsets of CD39-Treg which are discordant in MGUS and NDMM patients. These subsets may be permissive of plasma cell growth and thus play a role in malignant transformation from MGUS to myeloma, which warrants further study. Understanding the regulatory properties of these Treg subsets may have diagnostic and prognostic significance in MGUS and MM, including the definition of risk in smoldering MM, as well as therapeutic implications.
The investigation of the differentiation of terminal effector CD8+CD57+T cells (TTE) in multiple myeloma (MM) and its premalignant stage, monoclonal gammopathy of undetermined significance (MGUS), is essential for understanding myeloma immune escape. We have previously shown that patients with clonal expansions of cytotoxic TTE cells have better outcomes than those who do not, but have not examined the underlining differentiation of TTE cells that leads to these distinct states. We hypothesised that a lack of clonally expanded TTE cells in myeloma patients could be due to myeloma induced alterations of TTE cell differentiation. To define TTE cell differentiation at high resolution, we have analysed paired bone marrow (BM) and peripheral blood (PB) samples from patients with newly diagnosed Myeloma (NDMM) and MGUS using time of flight mass cytometry and unsupervised clustering algorithm Flow Self-organizing Map (FlowSOM). We designed a 39 antibody panel, including antibodies to TCR-Vβ families custom-labelled with heavy metals, allowing the detailed characterization of the phenotype of clonally expanded TTE cells. We found that in contrast to TTE cells in MGUS, TTE cells in BM of NDMM failed to display the phenotype typical of terminal effector cell differentiation and were enriched in atypical tissue resident CD69+, CD28+ and CD27+ subsets. They also failed to display the expected upregulation of CD45RA and downregulation of CD45RO expression. Moreover the accumulation of atypical CD69+ TTE cells was prevalent in myeloma patients without clonally expanded TTE cells. FlowSOM clustering discovered 4 metaclusters (MC) contributing to the accumulation of CD69+ TTE cells in the BM of NDMM patients. Phenotypically, two MC were in the memory stage based on CD27, CD28 and CD45RO expression and another two MC showed evidence of progression to the effector stage by downregulating CD27, CD28, CD45RO and upregulating CD45RA expression. Progression to the effector stage was associated with downregulation of CD38 and PD-1 expression, but did not affect persistent TIGIT expression. Vβ expanded TTE cells did not contribute to the accumulation of CD69+ TTE cells and occupied phenotypically different MC with low or undetectable CD69 expression. When comparing phenotype of Vβ expanded TTE cells to remaining TTE cells, effector and memory CD8+T cells they had higher Tbet, Perforin, Granzyme B, and lower levels of Eomes, TIGIT and PD-1 expression arguing against their exhaustion stage and confirming our previous observations that they resemble senescent cells Our results suggest that accumulation of atypical tissue resident CD69+ TTE cells in myeloma infiltrated BM could prevent differentiation and expansion of clonal myeloma specific CD8+TTE cells and ultimately contribute to myeloma immune escape.
Transplantation with autologous hematopoietic progenitors remains an important consolidation treatment for patients with multiple myeloma (MM) and is thought to prolong the disease plateau phase by providing intensive cytoreduction. However, transplantation induces inflammation in the context of profound lymphodepletion that may cause hitherto unexpected immunological effects. We developed preclinical models of bone marrow transplantation (BMT) for MM using Vk*MYC myeloma-bearing recipient mice and donor mice that were myeloma naive or myeloma experienced to simulate autologous transplantation. Surprisingly, we demonstrated broad induction of T cell-dependent myeloma control, most efficiently from memory T cells within myeloma-experienced grafts, but also through priming of naive T cells after BMT. CD8+ T cells from mice with controlled myeloma had a distinct T cell receptor (TCR) repertoire and higher clonotype overlap relative to myeloma-free BMT recipients. Furthermore, T cell-dependent myeloma control could be adoptively transferred to secondary recipients and was myeloma cell clone specific. Interestingly, donor-derived IL-17A acted directly on myeloma cells expressing the IL-17 receptor to induce a transcriptional landscape that promoted tumor growth and immune escape. Conversely, donor IFN-γ secretion and signaling were critical to protective immunity and were profoundly augmented by CD137 agonists. These data provide new insights into the mechanisms of action of transplantation in myeloma and provide rational approaches to improving clinical outcomes.
Recent evidence has revealed that oncogenic mutations may confer immune escape. A better understanding of how an oncogenic mutation affects immunosuppressive programmed death ligand 1 (PD-L1) expression may help in developing new therapeutic strategies. We show that oncogenic JAK2 (Janus kinase 2) activity caused STAT3 (signal transducer and activator of transcription 3) and STAT5 phosphorylation, which enhanced PD-L1 promoter activity and PD-L1 protein expression in JAK2V617F-mutant cells, whereas blockade of JAK2 reduced PD-L1 expression in myeloid JAK2V617F-mutant cells. PD-L1 expression was higher on primary cells isolated from patients with JAK2V617F-myeloproliferative neoplasms (MPNs) compared to healthy individuals and declined upon JAK2 inhibition. JAK2V617F mutational burden, pSTAT3, and PD-L1 expression were highest in primary MPN patient-derived monocytes, megakaryocytes, and platelets. PD-1 (programmed death receptor 1) inhibition prolonged survival in human MPN xenograft and primary murine MPN models. This effect was dependent on T cells. Mechanistically, PD-L1 surface expression in JAK2V617F-mutant cells affected metabolism and cell cycle progression of T cells. In summary, we report that in MPN, constitutive JAK2/STAT3/STAT5 activation, mainly in monocytes, megakaryocytes, and platelets, caused PD-L1-mediated immune escape by reducing T cell activation, metabolic activity, and cell cycle progression. The susceptibility of JAK2V617F-mutant MPN to PD-1 targeting paves the way for immunomodulatory approaches relying on PD-1 inhibition.
Tumor-promoting inflammation and avoiding immune destruction are hallmarks of cancer. Here, we demonstrate that the pro-inflammatory cytokine interleukin (IL)-18 is critically involved in these hallmarks in multiple myeloma (MM). Mice deficient for IL-18 were remarkably protected from Vk∗MYC MM progression in a CD8+ T cell-dependent manner. The MM-niche-derived IL-18 drove generation of myeloid-derived suppressor cells (MDSCs), leading to accelerated disease progression. A global transcriptome analysis of the immune microenvironment in 73 MM patients strongly supported the negative impact of IL-18-driven MDSCs on T cell responses. Strikingly, high levels of bone marrow plasma IL-18 were associated with poor overall survival in MM patients. Furthermore, our preclinical studies suggested that IL-18 could be a potential therapeutic target in MM.
Abstract Introduction Dysregulation of interleukin 6 (IL-6) is pivotal for the development of graft-versus-host-disease (GVHD) after allogeneic stem cell transplantation. IL-6 drives many protective as well as inflammatory effects, the latter involving differentiation of T cells into pathogenic Th22, Th17, and Tc17 subsets. IL-6 signals through three principal pathways; classical, trans, and cluster, but their contribution to T cell differentiation and GVHD remains unclear. Importantly, these pathways are differentially targeted by clinical IL-6 inhibitors. Aims To dissect the contribution of the IL-6 signaling pathways to T cell differentiation and GVHD in order to guide therapy. Methods Donor bone marrow and T cells were transplanted from lineage-specific Cre × IL-6fl/flor IL-6Rfl/fl mice into irradiated, MHC disparate, wild-type or sgp130:Fc transgenic recipient mice with or without IL-6R mAb. Donor T cell differentiation and GVHD was assessed after transplant. Results Surprisingly, IL-6 trans-signaling was not required for T cell differentiation and GVHD, but instead regulated Th22 cell development. Indeed, inhibition of IL-6 trans-signaling in sgp130:Fc recipients promoted the expansion of Th22 cells and generated severe cutaneous GVHD. In contrast, IL-6 classical-signaling was critical for the development of Th22 and Th17 cells and its inhibition significantly attenuated GVHD broadly. Interestingly, unlike Th17 differentiation, Tc17 differentiation was highly IL-6-dependent but independent of classical and trans-signaling pathways, consistent with induction by cluster-signaling. Conclusion These data highlight cluster, in addition to classical IL-6-signalling as key therapeutic targets.
Autologous stem cell transplantation (SCT) remains a standard of care for multiple myeloma (MM) patients and prolongs progression-free survival. A small cohort of patients achieve long-term control of disease, but the majority of patients ultimately relapse, and the mechanisms permitting disease progression remain unclear. In this study, we used a preclinical model of autologous SCT for myeloma where the disease either progressed (MM relapsed) or was controlled. In the bone marrow (BM), inhibitory receptor expression on CD8+ T cells correlated strongly with myeloma progression after transplant. In conjunction, the costimulatory/adhesion receptor CD226 (DNAM-1) was markedly downregulated. Interestingly, DNAM-1- CD8+ T cells in MM-relapsed mice had an exhausted phenotype, characterized by upregulation of multiple inhibitory receptors, including T-cell immunoglobulin and ITIM domains (TIGIT) and programmed cell death protein 1 (PD-1) with decreased T-bet and increased eomesodermin expression. Immune checkpoint blockade using monoclonal antibodies against PD-1 or TIGIT significantly prolonged myeloma control after SCT. Furthermore, CD8+ T cells from MM-relapsed mice exhibited high interleukin-10 (IL-10) secretion that was associated with increased TIGIT and PD-1 expression. However, while donor-derived IL-10 inhibited myeloma control post-SCT, this was independent of IL-10 secretion by or signaling to T cells. Instead, the donor myeloid compartment, including colony-stimulating factor 1 receptor-dependent macrophages and an IL-10-secreting dendritic cell population in the BM, promoted myeloma progression. Our findings highlight PD-1 or TIGIT blockade in conjunction with SCT as a potent combination therapy in the treatment of myeloma.
Autologous stem cell transplantation (ASCT) remains an important consolidation treatment for multiple myeloma (MM) patients, even in the era of novel agents. The prolongation of plateau-phase induced by ASCT is generally attributed to intensive cytoreduction. However, ASCT generates inflammation and profound lymphodepletion, which may result in hitherto unexpected immunological effects. To investigate potential immunological contributions to myeloma control after ASCT, we developed preclinical models of transplantation for MM using Vk*MYC myeloma that generates bony lytic lesions, a serum M band and marrow plasmacytosis that are hallmarks of clinical disease.